Waterfall method and apparatus for a data storage device read system

Information

  • Patent Grant
  • 9251844
  • Patent Number
    9,251,844
  • Date Filed
    Wednesday, April 8, 2015
    9 years ago
  • Date Issued
    Tuesday, February 2, 2016
    9 years ago
  • CPC
  • Field of Search
    • US
    • 360 053000
    • 360 031000
    • 360 046000
    • 360 097120
    • 324 210000
    • 029 603090
    • CPC
    • G11B5/455
    • G11B3/5166
    • G11B27/36
    • G11B20/10009
    • G11B5/09
    • G11B5/012
  • International Classifications
    • G11B27/36
    • G11B20/10
Abstract
A waterfall manufacturing process and apparatus are described for a data storage device. In an aspect, a determination is made during manufacturing of a magnetic storage medium reader system whether a first reader system provides less than a predetermined performance or is nonfunctioning. The reader system includes at least the first reader system and a second reader system with reader elements on the same head. When the first reader system is determined to provide less than the predetermined performance or is nonfunctioning, the reader system is reconfigured during the manufacturing to utilize the second reader system, but not utilize the first reader system, to read the magnetic storage medium. Alternatively, the reader system is reconfigured during manufacturing to read the magnetic storage medium at less than the predetermined performance, or the reader system is situated with a different data storage device configured to function with less than the predetermined performance.
Description
BACKGROUND

Magnetic storage systems are utilized in a wide variety of devices in both stationary and mobile computing environments. Magnetic storage systems include hard disk drives (HDD), and solid state hybrid drives (SSHD) that combine features of a solid-state drive (SSD) and a hard disk drive (HDD). Examples of devices that incorporate magnetic storage systems include desktop computers, portable notebook computers, portable hard disk drives, servers, network attached storage, digital versatile disc (DVD) players, high definition television receivers, vehicle control systems, cellular or mobile telephones, television set top boxes, digital cameras, digital video cameras, video game consoles, and portable media players.


There is an ongoing effort within the magnetic storage system industry to increase storage capacity while maintaining the same external drive form factor. Track density has increased, and track pitch has decreased, such that magnetic read heads may detect more inter-track noise. Two-dimensional magnetic recording (TDMR) uses multiple read heads to read a single data track, and can improve the reading performance of a magnetic storage system with a high-density disk, as compared to a system using a single read head.





BRIEF DESCRIPTION OF THE DRAWINGS

The foregoing aspects and many of the attendant advantages described herein will become more readily appreciated by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:



FIG. 1 is a top plan view of a disk drive data storage system in which embodiments are useful;



FIG. 2 is a top plan view of a data storage disk, showing servo tracks and servo sectors;



FIG. 3 is a top plan view of a hard disk drive (HDD) including a head and a disk including servo tracks, servo sectors, and control circuitry operable to actuate the head over the disk, in an embodiment;



FIG. 4 is a flow diagram illustrating a waterfall method for a data storage system, in an embodiment;



FIG. 5 is a flow diagram illustrating an alternative waterfall method for a data storage system, in an embodiment; and



FIG. 6 is a sectional view representation illustrating components of a system that executes methods of an embodiment.





DETAILED DESCRIPTION

In the following description, numerous specific details are disclosed to provide a thorough understanding of embodiments of the method, system and apparatus. One skilled in the relevant art will recognize, however, that embodiments of the method, system and apparatus described herein may be practiced without one or more of the specific details, or with other electronic devices, methods, components, and materials, and that various changes and modifications can be made while remaining within the scope of the appended claims. In other instances, well-known electronic devices, components, structures, materials, operations, methods, process steps and the like may not be shown or described in detail to avoid obscuring aspects of the embodiments. Embodiments of the apparatus, method and system are described herein with reference to figures.


Reference throughout this specification to “one embodiment,” “an embodiment,” or similar language means that a particular feature, structure, electronic device, method or characteristic described in connection with the embodiment is included in at least one embodiment. Thus, appearances of the phrases “in one embodiment,” “in an embodiment,” and similar language throughout this specification may refer to separate embodiments or may all refer to the same embodiment. Furthermore, the described features, structures, methods, electronic devices, or characteristics may be combined in any suitable manner in one or more embodiments.


Magnetic storage system performance demands and design needs have intensified. The current demand for larger capacity in a smaller dimension is linked to the demand for ever increasing storage track density. As the density of data on a magnetic storage medium increases, the strength of the magnetic fields generally decrease, in order to minimize interference. With an increase in track density and decrease in track pitch, magnetic read heads may detect more inter-track noise. Two-dimensional magnetic recording (TDMR) can improve the reading performance of a magnetic storage system with a high-density disk, as compared to a system using a single read head. TDMR read heads counteract extraneous noise by using multiple read elements to read a single data track, and as such, help to create a better signal to noise ratio (SNR) during read back. Additionally, using TDMR, two or more tracks may be detected simultaneously.


However, with a conventional TDMR system with multiple read elements, or a single reader system, an entire media surface may be lost when a reader element is nonfunctioning. During the manufacturing stage of a TDMR system, a reader system may be tested, and the system testing may show that the reader system provides less than a predetermined performance or has failed. A waterfall model may be used to manufacture a TDMR system. A waterfall model is a sequential process, used in product development, in which progress is seen as flowing steadily downward, like a waterfall, through various product development phases.


A waterfall method, process, and an apparatus are described herein for a data storage device read system. In an embodiment, the waterfall method and process are employed during the manufacture of a magnetic recording device with a TDMR system. As one example, when a single reader element is determined during manufacturing to provide less than a predetermined performance or is nonfunctioning, control circuitry is reconfigured, and the remaining reader elements on the same head are utilized to manufacture a fully functioning magnetic recording device.


The determination of whether a reader element or reader system provides less than a predetermined performance or failed may be made during various stages in the manufacturing process, including during head stack testing.


In another embodiment, when the first reader system is determined to provide less than the predetermined performance, the first reader system is retained, and the magnetic storage medium reader system is reconfigured to read the magnetic storage medium at less than the predetermined performance. In yet another embodiment, the magnetic storage medium reader system is situated with an alternative data storage device, and configured to function with less than the predetermined performance.


In an embodiment, the methods and apparatus are utilized with a TDMR head. A conventional TDMR drive system selects specific reader elements for normal operation as a function of armature skew angle, servo performance, etc. Reader element selection may also be based on format/error correction capability as determined during drive manufacturing. These functions may be utilized in part by some embodiments described herein.


The apparatus, system and methods disclosed may be utilized, in an embodiment, with disk drive memory systems, and other memory systems utilizing a magnetic reading device, including a HDD and a SSHD.


Referring to the figures wherein identical reference numerals denote the same elements throughout the various views, FIG. 1 illustrates a disk drive storage system 10, in which embodiments are useful. Features of the discussion and claims are not limited to this particular design, which is shown only for purposes of the example.


Disk drive 10 includes one or more data storage disks 14 of computer-readable data storage media. Typically, both of the major surfaces of each data storage disk 14 include a plurality of concentrically disposed tracks for data storage purposes, including user data sectors and servo sectors. Each data storage disk 14 is mounted on a hub or spindle 16, which in turn is rotatably interconnected with a base plate 12 and/or cover. Multiple data storage disks 14 are typically mounted in vertically spaced and parallel relation on the spindle 16. A spindle motor 18 rotates the data storage disks 14 at an appropriate rate.


The disk drive 10 also includes an actuator arm assembly 24 that pivots about a pivot bearing 22, which in turn is rotatably supported by the base plate 12 and/or cover. The actuator arm assembly 24 includes one or more individual rigid actuator arms 26 that extend out from near the pivot bearing 22. Multiple actuator arms 26 are typically disposed in vertically spaced relation, with one actuator arm 26 being provided for each major data storage surface of each data storage disk 14 of the disk drive 10. Other types of actuator arm assembly configurations may be utilized as well, such as an assembly having one or more rigid actuator arm tips or the like that cantilever from a common structure. Movement of the actuator arm assembly 24 is provided by an actuator arm drive assembly, such as a voice coil motor 20 or the like. The voice coil motor (VCM) 20 is a magnetic assembly that controls the operation of the actuator arm assembly 24 under the direction of control electronics 40.


A suspension 28 is attached to the free end of each actuator arm 26 and cantilevers therefrom. The slider 30 is disposed at or near the free end of each suspension 28. What is commonly referred to as the read/write head (e.g., transducer) is mounted as a head unit 32 under the slider 30 and is used in disk drive read/write operations. As the suspension 28 moves, the slider 30 moves along arc path 34 and across the corresponding data storage disk 14 to position the head unit 32 at a selected position on the data storage disk 14 for the disk drive read/write operations. When the disk drive 10 is not in operation, the actuator arm assembly 24 may be pivoted to a parked position utilizing ramp assembly 42. The head unit 32 is connected to a preamplifier 36 via head wires routed along the actuator arm 26, which is interconnected with the control electronics 40 of the disk drive 10 by a flex cable 38 that is typically mounted on the actuator arm assembly 24. Signals are exchanged between the head unit 32 and its corresponding data storage disk 14 for disk drive read/write operations.


The data storage disks 14 comprise a plurality of embedded servo sectors each comprising coarse head position information, such as a track address, and fine head position information, such as servo bursts. As the head 32 passes over each servo sector, a read/write channel (or servo control system) processes the read signal emanating from the head to demodulate the position information. The control circuitry processes the position information to generate a control signal applied to the VCM 20. The VCM 20 rotates the actuator arm 26 in order to position the head over a target track during the seek operation, and maintains the head over the target track during a tracking operation.


The head unit 32 may utilize various types of read sensor technologies such as anisotropic magnetoresistive (AMR), giant magnetoresistive (GMR), tunneling magnetoresistive (TMR), other magnetoresistive technologies, or other suitable technologies.



FIG. 2 shows a conventional disk format 200 including a number of servo tracks 204 defined by servo sectors 2060-206N recorded around the circumference of each servo track. Each servo sector 206i includes a preamble 208 for storing a periodic pattern, which allows proper gain adjustment and timing synchronization of the read signal, and a sync mark 210 for storing a special pattern used to symbol synchronize to a servo data field 212. The servo data field 212 stores coarse head positioning information, such as a servo track address, used to position the head over a target data track during a seek operation. Each servo sector 206i further includes groups of servo bursts 214 (e.g., N and Q servo bursts), which are recorded with a predetermined phase relative to one another and relative to the servo track centerlines. The phase based servo bursts 214 provide fine head position information used for centerline tracking while accessing a data track during write/read operations. A position error signal (PES) is generated by reading the servo bursts 214, wherein the PES represents a measured position of the head relative to a centerline of a target servo track. A servo controller processes the PES to generate a control signal applied to a head actuator (e.g., a voice coil motor) in order to actuate the head radially over the disk in a direction that reduces the PES.


Referring to FIG. 3, a portion of hard disk drive (HDD) is illustrated, according to an embodiment, including a head 316 and a disk 318. The disk 318 includes a plurality of servo tracks 320, wherein each servo track includes a plurality of servo sectors 3220-322N. The disk drive further includes control circuitry 324 including a servo control system operable to actuate the head over the disk in response to the servo sectors 3220-322N. The disk is rotated by a spindle motor 346 at a rotational speed that is controlled by the control circuitry 324, for example, a motor driver of the control circuitry 324.


Control circuitry 324 processes a read signal 332 emanating from the head 316 to demodulate the servo sectors 3220-322N and generate a position error signal (PES) representing an error between the actual position of the head and a target position relative to a target track. In an embodiment, the target track includes a target data track defined relative to the servo tracks 320, wherein the data tracks may be recorded at the same or different radial density than the servo tracks 320. The control circuitry 324 filters the PES using a suitable compensation filter to generate a control signal 334 applied to a voice coil motor (VCM) 336, which rotates an actuator arm 338 about a pivot in order to actuate the head 316 radially over the disk 318 in a direction that reduces the PES. The control circuitry 324 may also generate a control signal 340 applied to a microactuator 342 in order to actuate the head 316 over the disk 318 in fine movements. Any suitable microactuator 342 may be employed in the embodiments, such as a piezoelectric actuator. In addition, the microactuator 342 may actuate the head 316 over the disk 318 in any suitable manner, such as by actuating a suspension relative to the actuator arm, or actuating a slider relative to the suspension. The servo sectors 3220-322N may include any suitable head position information, such as a track address for coarse positioning and servo bursts for fine positioning. The servo bursts may include any suitable pattern, such as an amplitude based servo pattern or a phase based servo pattern.


To accomplish reading and writing of data to and from the disk, the control circuitry may include a read channel configured to process the read signal 332 from the head 316 and a write channel to prepare write signal 332 for sending to the head 316 for writing.


In an embodiment, head 316 is a TDMR head with multiple reader elements, allowing extraction of multiple read signals and subsequently improved SNR gains via signal processing the signal from multiple reader elements. The reader elements read the same track or adjacent tracks. In an embodiment, TDMR gains are provided when reading mostly the same track or processing signal from a main track and its adjacent tracks. In an embodiment, head 316 is a TDMR head that may be used with tracks including spiral data tracks, as well as conventional concentric data tracks.


In an embodiment, there is a separation between the individual reader elements, which can vary greatly over process, for each head. For a TDMR data or servo operation, the separation of the reader elements is situated for optimal digital signal processing (DSP) of the signals from the different reader elements. In an embodiment, the reader element separation is measured with high precision at different locations on the disk (e.g., adjusting for different actuator positions). In an embodiment, the TDMR head increases the data density of the recording media. In an embodiment, two reader elements, while accessing a target track, are separated and offset from a position centerline of the target track. In an embodiment, when the second reader element, but not the first reader element, is caused to read the magnetic storage medium, then the second reader element is repositioned to a position that is centerline to a target track.


In an embodiment, the magnetic storage medium reader system includes at least a first reader system and a second reader system. The first reader system includes a first reader element, and the second reader system includes a second reader element. Head 316 includes the first reader element and the second reader element. Control circuitry 324 is reconfigured during manufacturing of the magnetic storage medium reader system to cause the second reader system, but not the first reader system, to read a magnetic storage medium, when the first reader system is determined during the manufacturing to provide less than a predetermined performance or to be nonfunctioning.


In an embodiment, the second reader system is utilized with a non-two-dimensional magnetic recording (TDMR) data storage device.


In an embodiment, when the first reader system is determined during the manufacturing to provide less than a predetermined performance or to be nonfunctioning, the second reader system and a third reader system are utilized to read the magnetic storage medium. In this embodiment, the second reader system and the third reader system are utilized with a two-dimensional magnetic recording (TDMR) data storage device.


In an embodiment, when the first reader system is determined during the manufacturing to provide less than a predetermined performance or to be nonfunctioning, the magnetic storage medium reader system is reconfigured to i.) read at a track per inch (TPI) data density that is less than if the first reader system provided at least a predetermined performance and was additionally utilized, and/or ii.) provide a read signal at a signal to noise ratio (SNR) that is less than if the first reader system provided at least a predetermined performance and was additionally utilized.


In an embodiment, the second reader system includes a second reader element and a second read channel. The second reader system is structured such that when a second reader element signal is created, the second reader element signal travels from the second reader element to the second read channel. The first reader system includes a first reader element and a first read channel.


In an embodiment, when the second reader system is utilized to read the magnetic storage medium, the second reader system utilizes one portion or more than one portion of the second reader system to read the magnetic storage medium.


In an embodiment, when the first reader system is not utilized to read the magnetic storage medium, one portion or more than one portion of the first reader system is not utilized.


In an embodiment, the waterfall method and process described herein may include reconfiguring a reader system, changing servo operations, data formatting, and/or firmware control. In an embodiment, various servo control and data channel values may be encoded in one or more lookup tables, so these values provide options to accommodate various waterfall scenarios. In an embodiment, the waterfall process includes employing various pre-defined versions of firmware that can be selected for installation to a final drive product, depending on whether a waterfall process is utilized.



FIG. 4 illustrates a waterfall method and process for manufacturing a data storage system, in an embodiment. Each step in the flowchart illustration can be implemented by computer program instructions, in an embodiment. These computer program instructions may be provided to a processor of a programmable data processing apparatus, such that the instructions execute via the processor to implement the functions or actions specified in the flowchart. The instructions may be executed by a controller. In an embodiment, the controller is a component of a data storage device, such as a disk drive storage system. In an alternative embodiment, the controller is separate from the data storage device and may be connected to the data storage device to externally monitor and communicate with the data storage device.


As detailed in step 402, it is determined during manufacturing of a magnetic storage medium reader system, including at least a first reader system and a second reader system, whether the first reader system provides less than a predetermined performance or is nonfunctioning, in an embodiment. The first reader system includes a first reader element, and the second reader system includes a second reader element. A first head includes both the first reader element and the second reader element.


Next, as stated in step 404, the magnetic storage medium reader system is reconfigured during the manufacturing to utilize the second reader system, but not utilize the first reader system, to read the magnetic storage medium, when the first reader system is determined during the manufacturing to provide less than the predetermined performance or is nonfunctioning.


In an embodiment, the second reader system is utilized with a non-two-dimensional magnetic recording (non-TDMR) data storage device, when the first reader system is determined to provide less than the predetermined performance or is nonfunctioning.


In an embodiment, the manufacturing of the magnetic storage medium reader system includes a reader system with a two-dimensional magnetic recording (TDMR) head. Following steps 402 and 404, the method further includes utilizing the second reader system with a non-TDMR data storage device, rather than with the TDMR data storage device, when the first reader system is determined to provide less than the predetermined performance or is nonfunctioning.


In an embodiment, following steps 402 and 404, the second reader system is utilized with a non-TDMR data storage device, whether or not the manufacturing of the magnetic storage medium reader system included a reader system with a TDMR head when the first reader system was determined to provide less than a predetermined performance or was nonfunctioning.


In an embodiment, following steps 402 and 404, the second reader system is utilized with a TDMR data storage device, when the manufacturing of the magnetic storage medium reader system included a reader system with a TDMR head, and when a third, a fourth or additional reader systems provide at least a predetermined performance.


In an embodiment, following steps 402 and 404, when the magnetic storage medium reader system further includes a third reader system, the second reader system and the third reader system are utilized with a two-dimensional magnetic recording (TDMR) data storage device.


In an embodiment, following step 402, when the magnetic storage medium reader system further includes a third reader system, a fourth reader system, or more than four reader systems, the magnetic storage medium reader system is reconfigured during manufacturing to utilize reader systems that are providing at least a predetermined performance (e.g., second reader system, third reader system, and fourth reader system). In an embodiment, following step 402, the magnetic storage medium reader system is reconfigured during manufacturing to utilize any number of reader systems or reader heads that are providing at least a predetermined performance.


In an embodiment, following steps 402 and 404, the magnetic storage medium reader system is reconfigured to at least read at a track per inch (TPI) data density that is less than if the first reader system provided at least the predetermined performance and was additionally utilized, and/or provide a read signal at a signal to noise ratio (SNR) that is less than if the first reader system provided at least the predetermined performance and was additionally utilized.


In an embodiment, the second reader system includes the second reader element and a second read channel. The second reader system is structured such that when a second reader element signal is created, the second reader element signal travels from the second reader element to the second read channel. The first reader system includes the first reader element and a first read channel.


In an embodiment, when the second reader system is utilized to read the magnetic storage medium, one portion or more than one portion of the second reader system is utilized to read the magnetic storage medium.


In an embodiment, when the first reader system is not utilized to read the magnetic storage medium, one portion or more than one portion of the first reader system is not utilized.


In an embodiment, when the first reader system is not utilized, at least one component of the first reader system is utilized with the magnetic storage medium reader system, but a signal from the first reader system is not utilized.


In an embodiment, it is determined during manufacturing of the magnetic storage medium reader system whether a third reader system provides less than a predetermined performance or is nonfunctioning. The third reader system includes a third reader element. The first head further includes the third reader element. Next, the magnetic storage medium reader system is reconfigured during the manufacturing to utilize the second reader system, but not utilize the third reader system, to read the magnetic storage medium, when the third reader system is determined during the manufacturing to provide less than a predetermined performance or is nonfunctioning.


In an embodiment, before there is a determination that the first reader system provides less than a predetermined performance or is nonfunctioning, the first reader system and the second reader system are utilized together to read the magnetic storage medium. In an alternative embodiment, the second reader system is only employed in lieu of the first reader system, when the first reader system is determined to provide less than a predetermined performance or is nonfunctioning.


In an embodiment, reconfiguring the reader system during manufacturing includes directing or redirecting components of a TDMR drive such as servo, data channel, and controller firmware in the event that a reader system provides less than a predetermined performance or is nonfunctioning. For example, a data storage device firmware may have a contingency code that is activated upon determination of a reader system failure during manufacturing. In an embodiment, pre-defined normal and failure mode parameters/configuration values (e.g. related to channel, servo, etc.) may be stored in a lookup table (e.g., stored in non-volatile memory). In an embodiment, the memory may also be a disk media, with parameters read off of the reserve tracks at drive power up and stored in the system DDR buffer memory during operation of the hard drive. If failure mode is initiated, the appropriate table values are used. Once the failover method is employed, the properly performing reader element(s) are employed. In an embodiment, if a reader system is determined to provide less than a predetermined performance during manufacturing, it may be used for a limited purpose.



FIG. 5 is a flow diagram illustrating an alternative waterfall method for a data storage system, in an embodiment. As detailed in step 502, it is determined during manufacturing of a magnetic storage medium reader system, including at least a first reader system and a second reader system, whether the first reader system provides less than a predetermined performance, in an embodiment. The first reader system includes a first reader element, and the second reader system includes a second reader element. A first head includes both the first reader element and the second reader element. Next, as detailed in step 504, the first reader system is retained when the first reader system is determined to provide less than the predetermined performance. As detailed in step 506, the magnetic storage medium reader system is reconfigured to read the magnetic storage medium at less than the predetermined performance, or the magnetic storage medium reader system is situated with an alternative data storage device configured to function with less than the predetermined performance.


In an embodiment, the first reader system and the second reader system are situated with a non-two-dimensional magnetic recording (TDMR) data storage device, when the first reader system is determined to provide less than the predetermined performance.


In an embodiment, the magnetic storage medium reader system is manufactured with a two-dimensional magnetic recording (TDMR) head. Following steps 502, 504 and 506, in an embodiment, the method further includes situating the first reader system and the second reader system with a non-TDMR data storage device, rather than with the TDMR data storage device, when the first reader system is determined to provide less than the predetermined performance.


In an embodiment, the magnetic storage medium reader system further includes a third reader system, and the first reader system, the second reader system, and a third reader system are situated with a two-dimensional magnetic recording (TDMR) data storage device.


In an embodiment, following steps 502, 504 and 506, the magnetic storage medium reader system is reconfigured to read at a track per inch (TPI) data density that is less than if the first reader system provided at least the predetermined performance, and/or provide a read signal at a signal to noise ratio (SNR) that is less than if the first reader system provided at least the predetermined performance.


In an embodiment, inputs from two reader elements on one head are utilized in a reader array. In an alternative embodiment, more than two reader elements on one head may be utilized to read a magnetic storage medium, and signals from multiple reader elements may input to a read channel and control circuitry.


Any suitable control circuitry may be employed to implement the methods described herein, such as any suitable integrated circuit or circuits. For example, control circuitry may be implemented within a read channel integrated circuit, or in a component separate from the read channel, such as a disk controller, or certain operations described herein may be performed by a read channel and others by a disk controller. In an embodiment, the read channel and disk controller are implemented as separate integrated circuits, and in an alternative embodiment they are fabricated into a single integrated circuit or system on a chip (SOC). In addition, the control circuitry may include a suitable preamp circuit implemented as a separate integrated circuit, integrated into the read channel or disk controller circuit, or integrated into a SOC. In embodiment, the control circuitry includes suitable logic circuitry, such as state machine circuitry.


In an embodiment, the control circuitry or DSP includes a microprocessor executing instructions, the instructions being operable to cause the microprocessor to perform the methods described herein. The instructions may be stored in any computer-readable medium. In an embodiment, they may be stored on a non-volatile semiconductor memory external to the microprocessor, or integrated with the microprocessor in a SOC. In another embodiment, the instructions are stored on the disk and read into a volatile semiconductor memory when the disk drive is powered on.


In an embodiment, control circuitry detects when a first reader system provides less than a predetermined performance or is nonfunctioning, and thereafter causes a second reader system, but not the first reader system, to read the magnetic storage medium. In an embodiment, the control circuitry includes a controller and/or firmware. In an embodiment, one or more reader quality metrics (e.g., SNR of a signal) are detected by the control circuitry. In an embodiment, in-line calibrations may detect that a read element provides less than a predetermined performance or is nonfunctioning, despite failed sectors not being detected.


In an embodiment, when a first reader system and a second reader system are both determined to provide less than a predetermined performance, then control circuitry determines which reader system provides the better quality signal, and the reader system providing the better quality signal is utilized to read the magnetic storage medium.


In an embodiment, multiple reader element signals on one head input to one read channel. In an alternative embodiment, multiple reader element signals input to separate read channels. In yet another embodiment, multiple reader element signal pathways utilize portions of the same read channel, as well as utilize separate circuitry.


In an embodiment, when there is a determination that a first reader system provides less than a predetermined performance or is nonfunctioning, all of, or a portion of, the first reader system is not utilized to read the magnetic storage medium. For example, when only one portion of the first reader system is nonfunctioning (e.g., first reader system analog-to-digital converter), the first reader system may continue to use the functioning portion of first reader system, and alternatively use a portion of a second reader system (e.g., second reader system analog-to-digital converter) to read the magnetic storage medium.


Similarly, in an embodiment, when the second reader system is caused to read the magnetic storage medium, the second reader system may utilize one portion or more than one portion of the second reader system to read the magnetic storage medium.


In an embodiment, a third reader element is included with a head that includes a first reader element and a second reader element. When there is a determination that a first reader system and a third reader system provide less than a predetermined performance or is nonfunctioning, the second reader system, but not the first reader system or the third reader element (including, e.g., a third reader system) is caused to read the magnetic storage medium.


Turning now to FIG. 6, components of system 600 are illustrated, in an embodiment. System 600 includes processor module 604, storage module 606, input/output (I/O) module 608, memory module 610, and bus 602. Although system 600 is illustrated with these modules, other suitable arrangements (e.g., having more or less modules) known to those of ordinary skill in the art may be used. For example, system 600 may be a logic implemented state machine or a programmable logic controller.


In an embodiment, the methods described herein are executed by system 600. Specifically, processor module 604 executes one or more sequences of instructions contained in memory module 610 and/or storage module 606. In one example, instructions may be read into memory module 610 from another machine-readable medium, such as storage module 606. In another example, instructions may be read directly into memory module 610 from I/O module 608, for example from an operator via a user interface. Information may be communicated from processor module 604 to memory module 610 and/or storage module 606 via bus 602 for storage. In an example, the information may be communicated from processor module 604, memory module 610, and/or storage module 606 to I/O module 608 via bus 602. The information may then be communicated from I/O module 608 to an operator via the user interface.


Memory module 610 may be random access memory or other dynamic storage device for storing information and instructions to be executed by processor module 604. In an example, memory module 610 and storage module 606 are both a machine-readable medium.


In an embodiment, processor module 604 includes one or more processors in a multi-processing arrangement, where each processor may perform different functions or execute different instructions and/or processes contained in memory module 610 and/or storage module 606. For example, one or more processors may execute instructions for determining read element performance during the manufacturing of a magnetic storage medium reader system, and one or more processors may execute instructions for input/output functions. Also, hard-wired circuitry may be used in place of or in combination with software instructions to implement various example embodiments. Thus, embodiments are not limited to any specific combination of hardware circuitry and software.


The term “circuit” or “circuitry” as used herein includes all levels of available integration, for example, from discrete logic circuits to the highest level of circuit integration such as VLSI, and includes programmable logic components programmed to perform the functions of embodiments as well as general-purpose or special-purpose processors programmed with instructions to perform those functions.


Bus 602 may be any suitable communication mechanism for communicating information. Processor module 604, storage module 606, I/O module 608, and memory module 610 are coupled with bus 602 for communicating information between any of the modules of system 600 and/or information between any module of system 600 and a device external to system 600. For example, information communicated between any of the modules of system 600 may include instructions and/or data.


The term “machine-readable medium” as used herein, refers to any medium that participates in providing instructions to processor module 604 for execution. Such a medium may take many forms, including, but not limited to, non-volatile media, and volatile media. Non-volatile media includes, for example, optical or magnetic disks, such as storage module 606. Volatile media includes dynamic memory, such as memory module 610. Common forms of machine-readable media or computer-readable media include, for example, floppy disk, a flexible disk, hard disk, magnetic tape, any other magnetic medium, a CD-ROM, DVD, any other optical medium, punch cards, paper tape, any other physical mediums with patterns of holes, a RAM, a PROM, an EPROM, a FLASH EPROM, any other memory chip or cartridge, or any other medium from which a processor can read.


In an embodiment, a non-transitory machine-readable medium is employed including executable instructions for a data storage device. The instructions include code for determining during manufacturing of a magnetic storage medium reader system, including at least a first reader system and a second reader system, whether the first reader system provides less than a predetermined performance or is nonfunctioning. The first reader system includes a first reader element, and the second reader system includes a second reader element. A first head includes both the first reader element and the second reader element. The instructions further include code for reconfiguring the magnetic storage medium reader system during the manufacturing to utilize the second reader system, but not utilize the first reader system, to read the magnetic storage medium, when the first reader system is determined during the manufacturing to provide less than the predetermined performance or is nonfunctioning.


In an embodiment, the non-transitory machine-readable medium further includes executable instructions for determining during manufacturing of a magnetic storage medium reader system, including at least a first reader system and a second reader system, whether the first reader system provides less than a predetermined performance. The first reader system includes a first reader element, and the second reader system includes a second reader element. A first head includes both the first reader element and the second reader element.


The instructions further include code for retaining the first reader system when the first reader system is determined to provide less than a predetermined performance.


The instructions further include code for reconfiguring the magnetic storage medium reader system to read the magnetic storage medium at the less than the predetermined performance, or situating the magnetic storage medium reader system with an alternative data storage device configured to function with less than the predetermined performance.


The various features and processes described herein may be used independently of one another, or may be combined in various ways. All possible combinations and subcombinations are intended to fall within the scope of this disclosure. In addition, certain method, event or process blocks may be omitted in some implementations. The methods and processes described herein are also not limited to any particular sequence, and the blocks or states relating thereto can be performed in other sequences that are appropriate. For example, described tasks or events may be performed in an order other than that specifically disclosed, or multiple may be combined in a single block or state. The example tasks or events may be performed in serial, in parallel, or in some other manner. Tasks or events may be added to or removed from the disclosed example embodiments. The example systems and components described herein may be configured differently than described. For example, elements may be added to, removed from, or rearranged compared to the disclosed example embodiments.


While certain example embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the embodiments disclosed herein. Thus, nothing in the foregoing description is intended to imply that any particular feature, characteristic, step, module, or block is necessary or indispensable. Indeed, the novel methods and systems described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the methods and systems described herein may be made without departing from the spirit of the embodiments disclosed herein.


Modifications and variations may be made to the disclosed embodiments while remaining within the spirit and scope of the methods, systems and apparatus. The implementations described above and other implementations are within the scope of the following claims.

Claims
  • 1. A magnetic storage medium reader system for a data storage device, comprising: at least a first reader system and a second reader system, the first reader system including a first reader element, and the second reader system including a second reader element;a first head including the first reader element and the second reader element; andcontrol circuitry reconfigured during manufacturing of the magnetic storage medium reader system to cause the second reader system, but not the first reader system, to read a magnetic storage medium, the first reader system determined during the manufacturing to provide less than a predetermined performance or to be nonfunctioning.
  • 2. The magnetic storage medium reader system of claim 1, wherein the second reader system is utilized with a non-two-dimensional magnetic recording (TDMR) data storage device.
  • 3. The magnetic storage medium reader system of claim 1, further comprising a third reader system to read the magnetic storage medium, wherein the second reader system and the third reader system are utilized with a two-dimensional magnetic recording (TDMR) data storage device.
  • 4. The magnetic storage medium reader system of claim 1, wherein the magnetic storage medium reader system is reconfigured to at least one of: read at a track per inch (TPI) data density that is less than if the first reader system provided at least the predetermined performance and was additionally utilized, andprovide a read signal at a signal to noise ratio (SNR) that is less than if the first reader system provided at least the predetermined performance and was additionally utilized.
  • 5. The magnetic storage medium reader system of claim 1, wherein: utilizing the second reader system to read the magnetic storage medium comprises utilizing one portion or more than one portion of the second reader system to read the magnetic storage medium; andnot utilizing the first reader system to read the magnetic storage medium comprises not utilizing one portion or more than one portion of the first reader system.
  • 6. A method for manufacturing a data storage device, comprising: determining during manufacturing of a magnetic storage medium reader system, including at least a first reader system and a second reader system, whether the first reader system provides less than a predetermined performance or is nonfunctioning, wherein the first reader system includes a first reader element, and the second reader system includes a second reader element, and wherein a first head includes both the first reader element and the second reader element; andreconfiguring the magnetic storage medium reader system during the manufacturing to utilize the second reader system, but not utilize the first reader system, to read the magnetic storage medium, when the first reader system is determined during the manufacturing to provide the less than the predetermined performance or is nonfunctioning.
  • 7. The method of claim 6, wherein the manufacturing is manufacturing of a magnetic storage medium reader system that includes a two-dimensional magnetic recording (TDMR) head, the method further comprising utilizing the second reader system with a non-TDMR data storage device, rather than with the TDMR data storage device, when the first reader system is determined to provide the less than the predetermined performance or is nonfunctioning.
  • 8. The method of claim 6, further comprising utilizing the second reader system with a non-two-dimensional magnetic recording (TDMR) data storage device, when the first reader system is determined to provide the less than the predetermined performance or is nonfunctioning.
  • 9. The method of claim 6, further comprising utilizing the second reader system and a third reader system with a two-dimensional magnetic recording (TDMR) data storage device, wherein the magnetic storage medium reader system further includes the third reader system.
  • 10. The method of claim 6, further comprising reconfiguring the magnetic storage medium reader system to at least one of: read at a track per inch (TPI) data density that is less than if the first reader system provided at least the predetermined performance and was additionally utilized, andprovide a read signal at a signal to noise ratio (SNR) that is less than if the first reader system provided at least the predetermined performance and was additionally utilized.
  • 11. The method of claim 6, wherein the second reader system includes the second reader element and a second read channel, the second reader system structured such that when a second reader element signal is created, the second reader element signal travels from the second reader element to the second read channel; and wherein the first reader system includes the first reader element and a first read channel.
  • 12. The method of claim 6, wherein: utilizing the second reader system to read the magnetic storage medium comprises utilizing one portion or more than one portion of the second reader system to read the magnetic storage medium; andnot utilizing the first reader system to read the magnetic storage medium comprises not utilizing one portion or more than one portion of the first reader system.
  • 13. The method of claim 6, wherein not utilizing the first reader system comprises including at least one component of the first reader system with the magnetic storage medium reader system, but not utilizing a signal from the first reader system.
  • 14. The method of claim 6, further comprising: determining during the manufacturing of the magnetic storage medium reader system whether a third reader system provides less than the predetermined performance or is nonfunctioning, wherein the third reader system includes a third reader element, and wherein the first head further includes the third reader element; andreconfiguring the magnetic storage medium reader system during the manufacturing to utilize the second reader system, but not utilize the third reader system, to read the magnetic storage medium, when the third reader system is determined during the manufacturing to provide the less than the predetermined performance or is nonfunctioning.
  • 15. The method of claim 6, wherein reconfiguring the magnetic storage medium reader system during the manufacturing to utilize the second reader system comprises configuring the second reader element to reposition, during reading of a target track, from offset of the centerline of the target track to centerline of the target track.
  • 16. A method for a data storage device, comprising: determining during manufacturing of a magnetic storage medium reader system, including at least a first reader system and a second reader system, whether the first reader system provides less than a predetermined performance, wherein the first reader system includes a first reader element, and the second reader system includes a second reader element, and wherein a first head includes both the first reader element and the second reader element;retaining the first reader system when the first reader system is determined to provide the less than the predetermined performance; andreconfiguring the magnetic storage medium reader system to read the magnetic storage medium at the less than the predetermined performance, or situating the magnetic storage medium reader system with an alternative data storage device configured to function with the less than the predetermined performance.
  • 17. The method of claim 16, wherein the manufacturing is manufacturing of a magnetic storage medium reader system that includes a two-dimensional magnetic recording (TDMR) head, the method further comprising situating the first reader system and the second reader system with a non-TDMR data storage device, rather than with the TDMR data storage device, when the first reader system is determined to provide the less than the predetermined performance.
  • 18. The method of claim 16, further comprising situating the first reader system and the second reader system with a non-two-dimensional magnetic recording (TDMR) data storage device, when the first reader system is determined to provide the less than the predetermined performance.
  • 19. The method of claim 16, further comprising situating the first reader system, the second reader system, and a third reader system with a two-dimensional magnetic recording (TDMR) data storage device, wherein the magnetic storage medium reader system further includes the third reader system.
  • 20. The method of claim 16, further comprising reconfiguring the magnetic storage medium reader system to at least one of: read at a track per inch (TPI) data density that is less than if the first reader system provided at least the predetermined performance, andprovide a read signal at a signal to noise ratio (SNR) that is less than if the first reader system provided at least the predetermined performance.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application claims priority to provisional U.S. Patent Application Ser. No. 62/006,644, filed on Jun. 2, 2014, which is herein incorporated by reference in its entirety. The subject matter of the present application is also related to U.S. patent application Ser. No. 14/644,730, filed on Mar. 20, 2015, which is incorporated by reference in its entirety as if stated herein.

US Referenced Citations (469)
Number Name Date Kind
6018789 Sokolov et al. Jan 2000 A
6065095 Sokolov et al. May 2000 A
6078452 Kittilson et al. Jun 2000 A
6081447 Lofgren et al. Jun 2000 A
6092149 Hicken et al. Jul 2000 A
6092150 Sokolov et al. Jul 2000 A
6094707 Sokolov et al. Jul 2000 A
6105104 Guttmann et al. Aug 2000 A
6111717 Cloke et al. Aug 2000 A
6145052 Howe et al. Nov 2000 A
6175893 D'Souza et al. Jan 2001 B1
6178056 Cloke et al. Jan 2001 B1
6191909 Cloke et al. Feb 2001 B1
6195218 Guttmann et al. Feb 2001 B1
6205494 Williams Mar 2001 B1
6208477 Cloke et al. Mar 2001 B1
6223303 Billings et al. Apr 2001 B1
6230233 Lofgren et al. May 2001 B1
6246346 Cloke et al. Jun 2001 B1
6249393 Billings et al. Jun 2001 B1
6256695 Williams Jul 2001 B1
6262857 Hull et al. Jul 2001 B1
6263459 Schibilla Jul 2001 B1
6272694 Weaver et al. Aug 2001 B1
6278568 Cloke et al. Aug 2001 B1
6279089 Schibilla et al. Aug 2001 B1
6289484 Rothberg et al. Sep 2001 B1
6292912 Cloke et al. Sep 2001 B1
6310740 Dunbar et al. Oct 2001 B1
6317850 Rothberg Nov 2001 B1
6327106 Rothberg Dec 2001 B1
6337778 Gagne Jan 2002 B1
6369969 Christiansen et al. Apr 2002 B1
6373649 Walker et al. Apr 2002 B1
6384999 Schibilla May 2002 B1
6388833 Golowka et al. May 2002 B1
6405342 Lee Jun 2002 B1
6408357 Hanmann et al. Jun 2002 B1
6408406 Parris Jun 2002 B1
6411452 Cloke Jun 2002 B1
6411458 Billings et al. Jun 2002 B1
6412083 Rothberg et al. Jun 2002 B1
6415349 Hull et al. Jul 2002 B1
6425128 Krapf et al. Jul 2002 B1
6441981 Cloke et al. Aug 2002 B1
6442328 Elliott et al. Aug 2002 B1
6445524 Nazarian et al. Sep 2002 B1
6446156 Chia et al. Sep 2002 B1
6449767 Krapf et al. Sep 2002 B1
6453115 Boyle Sep 2002 B1
6470420 Hospodor Oct 2002 B1
6480020 Jung et al. Nov 2002 B1
6480349 Kim et al. Nov 2002 B1
6480932 Vallis et al. Nov 2002 B1
6483986 Krapf Nov 2002 B1
6487032 Cloke et al. Nov 2002 B1
6490635 Holmes Dec 2002 B1
6493173 Kim et al. Dec 2002 B1
6499083 Hamlin Dec 2002 B1
6519104 Cloke et al. Feb 2003 B1
6525892 Dunbar et al. Feb 2003 B1
6545830 Briggs et al. Apr 2003 B1
6546489 Frank, Jr. et al. Apr 2003 B1
6550021 Dalphy et al. Apr 2003 B1
6552880 Dunbar et al. Apr 2003 B1
6553457 Wilkins et al. Apr 2003 B1
6578106 Price Jun 2003 B1
6580573 Hull et al. Jun 2003 B1
6594183 Lofgren et al. Jul 2003 B1
6600620 Krounbi et al. Jul 2003 B1
6601137 Castro et al. Jul 2003 B1
6603622 Christiansen et al. Aug 2003 B1
6603625 Hospodor et al. Aug 2003 B1
6604220 Lee Aug 2003 B1
6606682 Dang et al. Aug 2003 B1
6606714 Thelin Aug 2003 B1
6606717 Yu et al. Aug 2003 B1
6611393 Nguyen et al. Aug 2003 B1
6615312 Hamlin et al. Sep 2003 B1
6633442 Quak et al. Oct 2003 B2
6639748 Christiansen et al. Oct 2003 B1
6647481 Luu et al. Nov 2003 B1
6654193 Thelin Nov 2003 B1
6657810 Kupferman Dec 2003 B1
6661591 Rothberg Dec 2003 B1
6665772 Hamlin Dec 2003 B1
6687073 Kupferman Feb 2004 B1
6687078 Kim Feb 2004 B1
6687850 Rothberg Feb 2004 B1
6690523 Nguyen et al. Feb 2004 B1
6690882 Hanmann et al. Feb 2004 B1
6691198 Hamlin Feb 2004 B1
6691213 Luu et al. Feb 2004 B1
6691255 Rothberg et al. Feb 2004 B1
6693760 Krounbi et al. Feb 2004 B1
6694477 Lee Feb 2004 B1
6697914 Hospodor et al. Feb 2004 B1
6704153 Rothberg et al. Mar 2004 B1
6708251 Boyle et al. Mar 2004 B1
6710951 Cloke Mar 2004 B1
6711628 Thelin Mar 2004 B1
6711635 Wang Mar 2004 B1
6711660 Milne et al. Mar 2004 B1
6715044 Lofgren et al. Mar 2004 B2
6724982 Hamlin Apr 2004 B1
6725329 Ng et al. Apr 2004 B1
6735650 Rothberg May 2004 B1
6735693 Hamlin May 2004 B1
6744772 Eneboe et al. Jun 2004 B1
6745283 Dang Jun 2004 B1
6751036 Quak et al. Jun 2004 B2
6751402 Elliott et al. Jun 2004 B1
6757481 Nazarian et al. Jun 2004 B1
6772281 Hamlin Aug 2004 B2
6781826 Goldstone et al. Aug 2004 B1
6782449 Codilian et al. Aug 2004 B1
6791779 Singh et al. Sep 2004 B1
6792486 Hanan et al. Sep 2004 B1
6795261 Chia et al. Sep 2004 B2
6799274 Hamlin Sep 2004 B1
6811427 Garrett et al. Nov 2004 B2
6826003 Subrahmanyam Nov 2004 B1
6826614 Hanmann et al. Nov 2004 B1
6832041 Boyle Dec 2004 B1
6832929 Garrett et al. Dec 2004 B2
6845405 Thelin Jan 2005 B1
6845427 Atai-Azimi Jan 2005 B1
6850443 Lofgren et al. Feb 2005 B2
6851055 Boyle et al. Feb 2005 B1
6851063 Boyle et al. Feb 2005 B1
6853731 Boyle et al. Feb 2005 B1
6854022 Thelin Feb 2005 B1
6862660 Wilkins et al. Mar 2005 B1
6880043 Castro et al. Apr 2005 B1
6882486 Kupferman Apr 2005 B1
6884085 Goldstone Apr 2005 B1
6888831 Hospodor et al. May 2005 B1
6892217 Hanmann et al. May 2005 B1
6892249 Codilian et al. May 2005 B1
6892313 Codilian et al. May 2005 B1
6895455 Rothberg May 2005 B1
6895500 Rothberg May 2005 B1
6898730 Hanan May 2005 B1
6910099 Wang et al. Jun 2005 B1
6928470 Hamlin Aug 2005 B1
6931439 Hanmann et al. Aug 2005 B1
6934104 Kupferman Aug 2005 B1
6934713 Schwartz et al. Aug 2005 B2
6940873 Boyle et al. Sep 2005 B2
6943978 Lee Sep 2005 B1
6948165 Luu et al. Sep 2005 B1
6950267 Liu et al. Sep 2005 B1
6954733 Ellis et al. Oct 2005 B1
6961814 Thelin et al. Nov 2005 B1
6965489 Lee et al. Nov 2005 B1
6965563 Hospodor et al. Nov 2005 B1
6965966 Rothberg et al. Nov 2005 B1
6967799 Lee Nov 2005 B1
6968422 Codilian et al. Nov 2005 B1
6968450 Rothberg et al. Nov 2005 B1
6973495 Milne et al. Dec 2005 B1
6973570 Hamlin Dec 2005 B1
6976190 Goldstone Dec 2005 B1
6983316 Milne et al. Jan 2006 B1
6986007 Procyk et al. Jan 2006 B1
6986154 Price et al. Jan 2006 B1
6995933 Codilian et al. Feb 2006 B1
6996501 Rothberg Feb 2006 B1
6996669 Dang et al. Feb 2006 B1
7002926 Eneboe et al. Feb 2006 B1
7003674 Hamlin Feb 2006 B1
7006316 Sargenti, Jr. et al. Feb 2006 B1
7009820 Hogg Mar 2006 B1
7012771 Asgari et al. Mar 2006 B1
7023639 Kupferman Apr 2006 B1
7024491 Hanmann et al. Apr 2006 B1
7024549 Luu et al. Apr 2006 B1
7024614 Thelin et al. Apr 2006 B1
7027716 Boyle et al. Apr 2006 B1
7028174 Atai-Azimi et al. Apr 2006 B1
7031902 Catiller Apr 2006 B1
7046465 Kupferman May 2006 B1
7046471 Meyer et al. May 2006 B2
7046488 Hogg May 2006 B1
7050252 Vallis May 2006 B1
7054937 Milne et al. May 2006 B1
7055000 Severtson May 2006 B1
7055167 Masters May 2006 B1
7057836 Kupferman Jun 2006 B1
7062398 Rothberg Jun 2006 B1
7075746 Kupferman Jul 2006 B1
7076604 Thelin Jul 2006 B1
7082494 Thelin et al. Jul 2006 B1
7088538 Codilian et al. Aug 2006 B1
7088545 Singh et al. Aug 2006 B1
7092186 Hogg Aug 2006 B1
7095577 Codilian et al. Aug 2006 B1
7099095 Subrahmanyam et al. Aug 2006 B1
7106537 Bennett Sep 2006 B1
7106947 Boyle et al. Sep 2006 B2
7110202 Vasquez Sep 2006 B1
7111116 Boyle et al. Sep 2006 B1
7114029 Thelin Sep 2006 B1
7120737 Thelin Oct 2006 B1
7120806 Codilian et al. Oct 2006 B1
7126776 Warren, Jr. et al. Oct 2006 B1
7129763 Bennett et al. Oct 2006 B1
7133600 Boyle Nov 2006 B1
7136244 Rothberg Nov 2006 B1
7146094 Boyle Dec 2006 B1
7149046 Coker et al. Dec 2006 B1
7150036 Milne et al. Dec 2006 B1
7155616 Hamlin Dec 2006 B1
7171108 Masters et al. Jan 2007 B1
7171110 Wilshire Jan 2007 B1
7194576 Boyle Mar 2007 B1
7196861 Ito Mar 2007 B2
7200698 Rothberg Apr 2007 B1
7205805 Bennett Apr 2007 B1
7206497 Boyle et al. Apr 2007 B1
7215496 Kupferman et al. May 2007 B1
7215771 Hamlin May 2007 B1
7237054 Cain et al. Jun 2007 B1
7240161 Boyle Jul 2007 B1
7249365 Price et al. Jul 2007 B1
7263709 Krapf Aug 2007 B1
7274639 Codilian et al. Sep 2007 B1
7274659 Hospodor Sep 2007 B2
7275116 Hanmann et al. Sep 2007 B1
7280302 Masiewicz Oct 2007 B1
7292774 Masters et al. Nov 2007 B1
7292775 Boyle et al. Nov 2007 B1
7296284 Price et al. Nov 2007 B1
7302501 Cain et al. Nov 2007 B1
7302579 Cain et al. Nov 2007 B1
7318088 Mann Jan 2008 B1
7319806 Willner et al. Jan 2008 B1
7324860 Dyer Jan 2008 B2
7325244 Boyle et al. Jan 2008 B2
7330323 Singh et al. Feb 2008 B1
7346790 Klein Mar 2008 B1
7366641 Masiewicz et al. Apr 2008 B1
7369340 Dang et al. May 2008 B1
7369343 Yeo et al. May 2008 B1
7372650 Kupferman May 2008 B1
7380147 Sun May 2008 B1
7392340 Dang et al. Jun 2008 B1
7404013 Masiewicz Jul 2008 B1
7406545 Rothberg et al. Jul 2008 B1
7409498 Henning et al. Aug 2008 B2
7415571 Hanan Aug 2008 B1
7436610 Thelin Oct 2008 B1
7437502 Coker Oct 2008 B1
7440214 Ell et al. Oct 2008 B1
7451344 Rothberg Nov 2008 B1
7471483 Ferris et al. Dec 2008 B1
7471486 Coker et al. Dec 2008 B1
7486060 Bennett Feb 2009 B1
7496493 Stevens Feb 2009 B1
7518819 Yu et al. Apr 2009 B1
7526184 Parkinen et al. Apr 2009 B1
7539924 Vasquez et al. May 2009 B1
7543117 Hanan Jun 2009 B1
7551383 Kupferman Jun 2009 B1
7562282 Rothberg Jul 2009 B1
7577973 Kapner, III et al. Aug 2009 B1
7596797 Kapner, III et al. Sep 2009 B1
7599139 Bombet et al. Oct 2009 B1
7619841 Kupferman Nov 2009 B1
7647544 Masiewicz Jan 2010 B1
7649704 Bombet et al. Jan 2010 B1
7653927 Kapner, III et al. Jan 2010 B1
7656603 Xing Feb 2010 B1
7656763 Jin et al. Feb 2010 B1
7657149 Boyle Feb 2010 B2
7672072 Boyle et al. Mar 2010 B1
7673075 Masiewicz Mar 2010 B1
7688540 Mei et al. Mar 2010 B1
7724461 McFadyen et al. May 2010 B1
7725584 Hanmann et al. May 2010 B1
7730295 Lee Jun 2010 B1
7760458 Trinh Jul 2010 B1
7768776 Szeremeta et al. Aug 2010 B1
7804657 Hogg et al. Sep 2010 B1
7813954 Price et al. Oct 2010 B1
7827320 Stevens Nov 2010 B1
7839588 Dang et al. Nov 2010 B1
7843660 Yeo Nov 2010 B1
7852596 Boyle et al. Dec 2010 B2
7859782 Lee Dec 2010 B1
7872822 Rothberg Jan 2011 B1
7898756 Wang Mar 2011 B1
7898762 Guo et al. Mar 2011 B1
7900037 Fallone et al. Mar 2011 B1
7900125 Liu et al. Mar 2011 B1
7907364 Boyle et al. Mar 2011 B2
7929234 Boyle et al. Apr 2011 B1
7933087 Tsai et al. Apr 2011 B1
7933090 Jung et al. Apr 2011 B1
7934030 Sargenti, Jr. et al. Apr 2011 B1
7940491 Szeremeta et al. May 2011 B2
7944639 Wang May 2011 B1
7945727 Rothberg et al. May 2011 B2
7949564 Hughes et al. May 2011 B1
7974029 Tsai et al. Jul 2011 B2
7974039 Xu et al. Jul 2011 B1
7982993 Tsai et al. Jul 2011 B1
7984200 Bombet et al. Jul 2011 B1
7990648 Wang Aug 2011 B1
7992179 Kapner, III et al. Aug 2011 B1
8004785 Tsai et al. Aug 2011 B1
8006027 Stevens et al. Aug 2011 B1
8014094 Jin Sep 2011 B1
8014977 Masiewicz et al. Sep 2011 B1
8019914 Vasquez et al. Sep 2011 B1
8040625 Boyle et al. Oct 2011 B1
8078943 Lee Dec 2011 B1
8079045 Krapf et al. Dec 2011 B2
8082433 Fallone et al. Dec 2011 B1
8085487 Jung et al. Dec 2011 B1
8089719 Dakroub Jan 2012 B1
8090902 Bennett et al. Jan 2012 B1
8090906 Blaha et al. Jan 2012 B1
8091112 Elliott et al. Jan 2012 B1
8094396 Zhang et al. Jan 2012 B1
8094401 Peng et al. Jan 2012 B1
8116020 Lee Feb 2012 B1
8116025 Chan et al. Feb 2012 B1
8134793 Vasquez et al. Mar 2012 B1
8134798 Thelin et al. Mar 2012 B1
8139301 Li et al. Mar 2012 B1
8139310 Hogg Mar 2012 B1
8144419 Liu Mar 2012 B1
8145452 Masiewicz et al. Mar 2012 B1
8149528 Suratman et al. Apr 2012 B1
8154812 Boyle et al. Apr 2012 B1
8159768 Miyamura Apr 2012 B1
8161328 Wilshire Apr 2012 B1
8164849 Szeremeta et al. Apr 2012 B1
8174780 Tsai et al. May 2012 B1
8190575 Ong et al. May 2012 B1
8194338 Zhang Jun 2012 B1
8194340 Boyle et al. Jun 2012 B1
8194341 Boyle Jun 2012 B1
8201066 Wang Jun 2012 B1
8271692 Dinh et al. Sep 2012 B1
8279550 Hogg Oct 2012 B1
8281218 Ybarra et al. Oct 2012 B1
8285923 Stevens Oct 2012 B2
8289656 Huber Oct 2012 B1
8305705 Roohr Nov 2012 B1
8307156 Codilian et al. Nov 2012 B1
8310775 Boguslawski et al. Nov 2012 B1
8315006 Chahwan et al. Nov 2012 B1
8316263 Gough et al. Nov 2012 B1
8320067 Tsai et al. Nov 2012 B1
8324974 Bennett Dec 2012 B1
8332695 Dalphy et al. Dec 2012 B2
8339919 Lee Dec 2012 B1
8341337 Ong et al. Dec 2012 B1
8350628 Bennett Jan 2013 B1
8356184 Meyer et al. Jan 2013 B1
8370683 Ryan et al. Feb 2013 B1
8375225 Ybarra Feb 2013 B1
8375274 Bonke Feb 2013 B1
8380922 DeForest et al. Feb 2013 B1
8390948 Hogg Mar 2013 B2
8390952 Szeremeta Mar 2013 B1
8392689 Lott Mar 2013 B1
8407393 Yolar et al. Mar 2013 B1
8413010 Vasquez et al. Apr 2013 B1
8417566 Price et al. Apr 2013 B2
8421663 Bennett Apr 2013 B1
8422172 Dakroub et al. Apr 2013 B1
8427770 O'Dell et al. Apr 2013 B1
8427771 Tsai Apr 2013 B1
8429343 Tsai Apr 2013 B1
8433937 Wheelock et al. Apr 2013 B1
8433977 Vasquez et al. Apr 2013 B1
8441909 Thayamballi et al. May 2013 B1
8456980 Thayamballi Jun 2013 B1
8458526 Dalphy et al. Jun 2013 B2
8462466 Huber Jun 2013 B2
8467151 Huber Jun 2013 B1
8483027 Mak et al. Jul 2013 B1
8489841 Strecke et al. Jul 2013 B1
8493679 Boguslawski et al. Jul 2013 B1
8499198 Messenger et al. Jul 2013 B1
8514506 Li et al. Aug 2013 B1
8554741 Malina Oct 2013 B1
8560759 Boyle et al. Oct 2013 B1
8576509 Hogg Nov 2013 B1
8576511 Coker et al. Nov 2013 B1
8578100 Huynh et al. Nov 2013 B1
8578242 Burton et al. Nov 2013 B1
8582223 Garani et al. Nov 2013 B1
8582231 Kermiche et al. Nov 2013 B1
8589773 Wang et al. Nov 2013 B1
8593753 Anderson Nov 2013 B1
8599512 Hogg Dec 2013 B2
8605379 Sun Dec 2013 B1
8611031 Tan et al. Dec 2013 B1
8611032 Champion et al. Dec 2013 B2
8612798 Tsai Dec 2013 B1
8619383 Jung et al. Dec 2013 B1
8619508 Krichevsky et al. Dec 2013 B1
8619529 Liew et al. Dec 2013 B1
8621115 Bombet et al. Dec 2013 B1
8621133 Boyle Dec 2013 B1
8625224 Lin et al. Jan 2014 B1
8625225 Wang Jan 2014 B1
8626463 Stevens et al. Jan 2014 B2
8630052 Jung et al. Jan 2014 B1
8631188 Heath et al. Jan 2014 B1
8635412 Wilshire Jan 2014 B1
8661193 Cobos et al. Feb 2014 B1
8665547 Yeo et al. Mar 2014 B1
8667248 Neppalli Mar 2014 B1
8670205 Malina et al. Mar 2014 B1
8671250 Lee Mar 2014 B2
8681442 Hogg Mar 2014 B2
8681445 Kermiche et al. Mar 2014 B1
8683295 Syu et al. Mar 2014 B1
8687306 Coker et al. Apr 2014 B1
8687307 Patton, Iii Apr 2014 B1
8687313 Selvaraj Apr 2014 B2
8693133 Lee et al. Apr 2014 B1
8698492 Mak et al. Apr 2014 B1
8699171 Boyle Apr 2014 B1
8699172 Gunderson et al. Apr 2014 B1
8711500 Fong et al. Apr 2014 B1
8711506 Giovenzana et al. Apr 2014 B1
8711665 Abdul Hamid Apr 2014 B1
8717694 Liew et al. May 2014 B1
8717695 Lin et al. May 2014 B1
8730612 Haralson May 2014 B1
8743502 Bonke et al. Jun 2014 B1
8749911 Sun et al. Jun 2014 B1
8753146 Szeremeta et al. Jun 2014 B1
8755136 Ng et al. Jun 2014 B1
8756361 Carlson et al. Jun 2014 B1
8760782 Garani et al. Jun 2014 B1
8760792 Tam Jun 2014 B1
8769593 Schwartz et al. Jul 2014 B1
8773787 Beker Jul 2014 B1
8773793 McFadyen Jul 2014 B1
8773802 Anderson et al. Jul 2014 B1
8773807 Chia et al. Jul 2014 B1
8773957 Champion et al. Jul 2014 B1
8780470 Wang et al. Jul 2014 B1
8782334 Boyle et al. Jul 2014 B1
8786976 Kang et al. Jul 2014 B1
8787125 Lee Jul 2014 B1
8792196 Lee Jul 2014 B1
8792200 Tam et al. Jul 2014 B1
8797667 Barlow et al. Aug 2014 B1
8799977 Kapner, III et al. Aug 2014 B1
8817413 Knigge et al. Aug 2014 B1
8817584 Selvaraj Aug 2014 B1
8825976 Jones Sep 2014 B1
8825977 Syu et al. Sep 2014 B1
20070025005 Shimizu Feb 2007 A1
20090113702 Hogg May 2009 A1
20100306551 Meyer et al. Dec 2010 A1
20110226729 Hogg Sep 2011 A1
20120159042 Lott et al. Jun 2012 A1
20120275050 Wilson et al. Nov 2012 A1
20120281963 Krapf et al. Nov 2012 A1
20120324980 Nguyen et al. Dec 2012 A1
Non-Patent Literature Citations (1)
Entry
David W. Wheelock, et al., U.S. Appl. No. 14/644,730, filed Mar. 20, 2015, 29 pages.
Provisional Applications (1)
Number Date Country
62006644 Jun 2014 US