This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2010-148124, filed Jun. 29, 2010, the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to a bidirectional communication interface apparatus.
As a bidirectional communication interface apparatus, the High-definition Digital Media Interface (HDMI) is widely used.
In HDMI itself, Audio Return Channel version 1.4 (ARC)/HDMI Ethernet Channel version 1.4 (HEC) or the like is defined following the Consumer Electronics Control (CEC) standard defined later.
In HDMI version 1.4, high-speed Ethernet (registered trademark) communication is realized for a video signal and audio signal, but it is required to further enhance the transmission speed. Further, it becomes possible to transmit input of an audio output from a sink device to a source device by means of a single HDMI cable based on ARC (version 1.4), but an optical digital audio output of the sink device cannot be directly output to the source device.
A general architecture that implements the various features of the embodiments will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate the embodiments and not to limit the scope of the invention.
Various embodiments will be described hereinafter with reference to the accompanying drawings. In general, according to one embodiment, a bidirectional communication interface apparatus comprising: a first converting module configured to convert a mixed output of a video signal and audio signal from a source device to an optical signal; an optical cable configured to transmit the optical signal converted by the first converting module; and a second converting module configured to convert the optical signal transmitted via the optical cable to a mixed output of a video signal and audio signal and input a result of conversion to a sink device.
Embodiments will now be described hereinafter in detail with reference to the accompanying drawings.
A bidirectional communication interface, for example, a High-definition Digital Media Interface (HDMI) 101 includes an optical transmission cable 121 that is an optical fiber, for example, between plugs (plug, cable-side connector) 111 on both end portions thereof. The HDMI 101 can support the version 1.4 (ARC/HEC) and transmit an optical digital audio signal.
A recording/playback apparatus 201 that plays back content, that is, programs or TV programs, is connected to one of the plugs 111 of the HDMI 101 and a video image display apparatus (monitor apparatus, display or television receiver) 301 is connected to the other plug 111 thereof. The recording/playback apparatus 201 is referred to as a source device. The video image display apparatus 301 is referred to as a sink device with respect to the source device (recording/playback apparatus 201).
The source device (recording/playback apparatus) 201 may be a recorder device that records and plays back a video signal and audio signal of content, that is, a TV program or program, a player device that can only play back content, a game device, a video camera or the like. Further, the source device 201 may be a personal computer (PC), a data playback apparatus (optical disk drive apparatus) that can be connected to a PC and play back data (content) held by an optical disk of, for example, the DVD standard/CD standard or the like, a reader/writer (data playback apparatus) that can read data (content) from a solid-state drive (SSD [semiconductor memory device]), for example, a mobile terminal device, digital camera device or mobile telephone device or a navigation device that can be mounted in a car or which the user can carry.
The source device 201 includes an HDMI interface module 211 connected to one of the plugs 111 of the HDMI 101. The interface module 211 includes a receptor (receptacle, device-side connector) 221 to which the plug 111 of the HDMI 101 can be connected.
The sink device 301 includes an HDMI interface module 311 connected to the other plug 111 of the HDMI 101. The interface module 311 includes a receptor (device-side connector) 321 to which the other plug of the HDMI 101 can be connected.
The plug 111 of the HDMI 101 will be explained later with reference to
The feature of the shape of the plug 111 can be achieved by means of convex portions corresponding to concave portions formed in the receptor 221 (source device-side interface module 211) and receptor 321 (sink device-side interface module 311). The convex portions of the plugs 111 can be easily detected by means of switches that are turned on by pressure from the convex portions (of the plugs) or mechanisms (photointerrupters or the like) that detect the presence of the convex portions in the concave portions of the receptors 221 and 321, for example.
The receptor 221 (source device 201) and receptor 321 (sink device 301) will be explained later with reference to
The receptor 221 on the source device 201 side includes a multiplexer (MUX) 222 having four transition-minimized differential signaling (TMDS) channels configured by red (R), green (G), blue (B) and clock (CK) and coexisting in one channel, a demultiplexer (DeMUX module) 223 that separates signals coexisting in one channel into four TMDS channels and a power source (5 V line) 224.
The receptor 321 on the sink device 301 side includes a multiplexer (MUX module) 322 having four TMDS channels coexisting in one channel (like the source-side receptor 221), a demultiplexer (DeMUX module) 323 that separates signals coexisting in one channel into four TMDS channels and a power source (5 V line) 324. Further, the receptor 321 on the sink device 301 side is equivalent to the version 1.4 in that it includes extended display identification data (EDID) 325 used to determine the performance (playback ability) of the sink device on the source device side. The EDID 325 is capability data (for example, the receivable timing of the TV receiver is up to 1080p) of the sink device (TV receiver) 301 and can be acquired by the source device 201 according to a read command from the source device 201.
The plug 111 (which may be referred to as plug Y to distinguish it from a plug corresponding to the version 1.4) at one end of the HDMI 101 includes an optical signal generator 113 that converts an output from the MUX (multiplexer) of a receptor (receptor Y) of the to-be-connected source device 201 (or the sink device 301), a photoelectric converter 115 that converts an optical signal transmitted from the other plug 111 via the optical fiber 121, a terminal (contact) 117 that is applied with a voltage of 5 V from the power source (224) of the receptor Y of the source device and the like. Since an EEPROM 119 that holds an identifier 101a indicating a type and a version corresponding to the HDMI 101 is incorporated in one of the plugs 111, the version can be distinguished from the (conventional) version 1.4 at the time of signal transmission that will be explained later.
The optical signal generator (photoelectric converter) 113 includes a photoelectric converter, for example, a laser diode, subjects an output of the receptor (receptor Y) of the source device 201 (or the sink device 301) that is a transmission source to photoelectric conversion and inputs the result of conversion to the optical fiber 121.
The photoelectric converter 115 converts an optical signal transmitted from the optical fiber 121 via the sink device 301 (or the source device 201) that is a to-be-connected object to an electrical signal and inputs the result of conversion to the demultiplexer (DeMUX module) in the receptor.
In
An optical modulation output guided to the other plug 111 via the optical fiber 121 is converted to an electrical signal by means of the photoelectric converter 115 and output to the DeMUX module 323 of the sink device 301 via the terminal 117.
A transmission output of the sink device 301 obtained by mixing the signals in the MUX 322 is guided to one of the plugs 111 on the sink device 301 side via the terminal 117, converted to a modulated optical output by the optical signal generator 113 and input to the optical fiber 121.
An optical modulation output guided to the plug 111 on the source device 201 side via the optical fiber 121 is converted to an electrical signal by means of the photoelectric converter 115 and output to the DeMUX module 223 of the source 201 via the terminal 117.
More specifically, as shown in
The mixed signal is converted from an electrical signal to an optical signal by means of the photoelectric converter (optical signal generator) 113 and transmitted via the optical cable (121) or the like.
As shown in
The receptor Y shown in
As shown in
As shown in
When the plug X (the version 1.4) is connected to the receptor Y (321) on the sink device 301 side, the video signals R, G and B and clock signal CK that are outputs of the respective channels of the TMDS processor 326 are transmitted to the receptor Y (221) on the source device 201 side via the cable line X connected to the terminal 117 without passing through the MUX 322. The other signals (control signal, power source voltage, ground voltage and the like) are also supplied to the source device 201 side via the cable line X connected to the terminal 117.
In this case, the signal that can be transmitted via the cable line X is an electrical signal, but compatibility of the connection between the source device and the sink device can be achieved in the range of the version 1.4.
In
As is clearly seen from
The plug 111 ([d]) that is the type-Y connector has a protruding (convex) portion 111a in the connecting portion (part of the contact portion) or the surrounding mold (resin) portion to prevent it from being engaged with the receptor X of the type-X connector.
The receptor 221 or 321 ([c]) that is the type-Y connector has a shape (concave portion) 221a (321a) that receives the protruding portion 111a of the plug 111 of the type-Y connector, the shape thereof coincides with that of the plug and the receptor is engaged with the protruding portion 111a of the plug 111. The type-X plug having no protrusion on the plug side can also be similarly engaged as described above. Further, the presence of the protruding portion (convex portion) 111a of the plug 111 can be detected by means of a switch that is turned on by pressure by the convex portion (of the plug) or a mechanism (photointerrupter or the like) that detects the presence of the convex portion. When the plug of the type-X connector having no protruding portion 111a is connected, a signal can be transferred in accordance with the HDMI cable conforming to the version 1.4. If the plug can be detected to conform with the version 1.4, for example, power saving can be attained by stopping application of a power source voltage (5 V) to the photoelectric converter 115 and the photoelectric converter (optical signal generator) 113 of type Y (above HDMI 101). Further, power saving can be attained for the type-X connector that supports the version 1.4 by use of the type-Y connector and the number of connectors prepared for the product can be reduced. As a result, power saving for the connector and the like can be realized.
In
A reception signal received from the sink device is input to the photoelectric converter 115 via the HDMI 101 used as a reception channel Ch1 and converted to an electrical signal. The reception signal converted to the electrical signal by the photoelectric converter 115 is separated into a clock signal CK and video signals (which are encoded on the sink device side) by means of the DeMUX module (demultiplexer) 223. The separated video signals are decoded by a decoder 240 and stored, for example, in a buffer memory as video signals R, G and B.
At the time of signal transmission, it is confirmed that the HDMI 101 includes the optical cable 121 according to the presence or absence of the identifier 101a. The presence or absence of the identifier 101a can be confirmed by detecting that an EEPROM 119 is prepared by hot-plug detect (HPD) (detection of the sink device connection) when a power source voltage (5 V) is applied to the plug 111 (of the HDMI 101) in the receptor 221 of the interface module 211 of the source device 201, acquiring the identifier 101a held in the EEPROM 119 via a signal line display data channel (DDC) and determining the acquired identifier 101a by means of a microcomputer 250.
In
A signal from the source device that is received as the reception channel Ch0 via the HDMI 101 is converted to an electrical signal by means of the photoelectric converter 113 and separated into a clock signal CK and video signals (encoded in the source device) by means of the DeMUX module 323 and the video signals are decoded to video signals R, G and B in a decoder 340 and stored in a buffer memory, for example.
At the time of signal transmission, it is confirmed that the HDMI 101 includes the optical cable 121 by determining a terminal voltage of a utility terminal 360 prepared for the receptor 321 of the interface module 311 of the sink device 301 by means of a microcomputer 350.
As one example, when the type-Y connector is connected by connecting the utility terminal 360 to ground (GND) via a resistor R2 and connecting the power source (5 V) to the utility terminal 360 via a resistor R1, the following voltage dividing equation is set up (Vout can be obtained).
Vout=(R2/(R1+R2))×Vin
where Vin=5 V and
For example, if Vin=5 V, R1=1 kΩ and R2=2 kΩ, then the relationship of Vout=Vutl=3.3 V can be obtained. Further, if a preset specified range is set to 3.0 to 4.0 V, it can be determined that the type-Y connector is connected. As Vutl (voltage of utility line), voltage Vutl of a utility line detected by a voltage detector 370 may be input to the microcomputer 350 in the receptor 321 of the interface module 311 of the sink device.
That is, when the power source voltage (5 V) is detected to be changed to a voltage in a preset specified range and the detected voltage is a voltage in the specified range, it can be confirmed that the HDMI 101 includes the optical cable 121.
As described above, the HDMI system that transmits a video signal, audio signal and control signal by use of the HDMI interface having the HDMI connector of the embodiment can transmit the optical digital signal. Further, when the connector (cable) conforming with the version 1.4 (type X) is mounted thereon, signal transmission in accordance with the conventional version (the version 1.4) can be performed. As a result, the number of types of connectors can be reduced, the cost of the components can be reduced and the terminal panel area can be effectively utilized.
Further, the HDMI system that transmits a video signal, audio signal and control signal by use of the HDMI interface having the HDMI connector of the embodiment can determine the type of a connected HDMI connector (cable) and use a transmission method suitable for the version of the HDMI, that is, the cable characteristic. Therefore, compatibility with respect to the existing HDMI device can be attained and the transmission speed of data utilizing an optical digital signal can be increased.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2010-148124 | Jun 2010 | JP | national |