Not applicable.
1. Field of the Invention
The present invention relates to an apparatus, a transmission method, and a tangible machine-readable medium for relaying a data signal. More specifically, the present invention relates to an apparatus, a transmission method, and a tangible machine-readable medium for relaying a data signal in multi-hop relay network.
2. Descriptions of the Related Art
The hybrid automatic request (HARQ) technique, adopted in the IEEE 802.16 standard, is an advanced data retransmission strategy, which allows performing possible data retransmissions directly at the physical layer instead of the media access control (MAC) layer and/or higher layers. Since the HARQ technique is able to achieve data retransmission without involving mechanisms at the higher layers, the delay caused by data retransmission is significantly reduced. However, the HARQ technique still has some defects in the relay of a multi-hop relay network, and the defects are going to be defined in the IEEE 802.16j standard. Since an HARQ channel can be setup by two approaches (the end-to-end HARQ mechanism and the hop-by-hop HARQ mechanism), the defects of the HARQ are mainly described from the viewpoints of the two approaches.
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Accordingly, how to improve the performance of the HARQ in multi-hop relay systems is still an objective for the industry to endeavor.
The primary objective of this invention is to provide an apparatus for relaying a data signal in a multi-hop relay network. The apparatus comprises a storage module, a receiving module, and a transmission module. The storage module is configured to store a message of the multi-hop relay network, wherein the message indicates a resource allocation of the multi-hop relay network. The receiving module is configured to receive the data signal. The transmission module is configured to transmit the data signal and a first response signal according to the message in response to the data signal, wherein the first response signal relates to a correctness of the data signal.
Another objective of this invention is to provide a transmission method for relaying a data signal in a multi-hop relay network. The transmission method comprises following steps of: receiving the data signal; transmitting the data signal according to a message of the multi-hop relay network in response to the receiving step, wherein the message indicates a resource allocation of the multi-hop relay network; and transmitting a first response signal according to the message in response to the receiving step, wherein the first response signal relates to a correctness of the data signal.
Yet a further objective of this invention is to provide a tangible machine-readable medium storing a computer program to enable an apparatus to execute a transmission method for relaying a data signal in a multi-hop relay network. The transmission method comprises the steps of: enabling the apparatus to receive the data signal; enabling the apparatus to transmit the data signal according to a message of the multi-hop relay network in response to the receiving step, wherein the message indicates a resource allocation of the multi-hop relay network; and enabling the apparatus to transmit a first response signal according to the message in response to the receiving step, wherein the first response signal relates to a correctness of the data signal.
The present invention provides a new approach to relay a data signal in a multi-hop relay network. In the framework of HARQ, the relay station relays the data signal to successor regardless of the data signal being corrupted by noise or not during transmission. This will effectively utilize the pre-schedule bandwidths for multiple links to improve the performance of the whole relay system in the multi-hop relay network.
The detailed technology and preferred embodiments implemented for the subject invention are described in the following paragraphs accompanying the appended drawings for people skilled in this field to well appreciate the features of the claimed invention.
The present invention provides an apparatus, a transmission method, and a tangible machine-readable medium thereof for relaying a data signal in a multi-hop relay network. In the following embodiments, multi-hop relay networks based on the IEEE 802.16j standard are used. However, the scope of the present invention is not limited to the applications based on the IEEE 802.16j standard. The relay operations in a multi-hop relay network based on the IEEE 802.16j standard are well-known by people skilled in the art, and are not repeated again. A multi-hop relay network has two kinds of operation: downlink and uplink operations. In this invention, only the downlink operation in the multi-hop relay network is described. It means that only the relay operations from a base station (BS) to a mobile station (MS) are described.
A first embodiment of the present invention is shown in
The receiving module 33 is configured to receive the data signal 32. After the receiving module 33 receives the data signal 32, the storage module 31 will store it. Then, the transmission module 35 is configured to retrieve the data signal 32 from the storage module 31 and transmit the data signal 32 to its successor (to be explained later) and a first response signal 36 to its predecessor (to be explained later) according to the message 34 in response to the data signal 32, wherein the first response signal 36 relates to a correctness of the data signal 32. To be more specific, the data signal 32 is sent to the transmission module 35 and determination module 37 respectively. The determination module 37 is configured to determine whether the data signal 32 is correct or not. That is, the determination module 37 is configured to determine whether the data signal 32 is corrupted by noise during transmission. If the data signal 32 is correct, the determination module 37 is further configured to generate an acknowledgement signal as the first response signal 36 for the transmission module 35 to transmit to its predecessor (to be explained later). If the determination module 37 determines that the data signal is erroneous, a negative-acknowledgement signal is generated as the first response signal 36 for the transmission module 35 to transmit to its predecessor (to be explained later).
The transmission module 35 transmits the aforementioned data signal 32 and the aforementioned first response signal 36 according to the message 34 in response to the data signal 32. Particularly, the message 34 records the relation between the apparatus 3, the BS and the MS. If there are other relay stations in the multi-hop relay network, the message 34 also records the relations between the other relay stations and the apparatus, the BS, and the MS. Consequently, the transmission module 35 of the apparatus 3 can know its successor (such as the RS/MS) and/or predecessor (such as the BS/RS) by the message 34.
In addition, the receiving module 33 is further configured to receive a second response signal intended to be transmitted to the BS. This happens when the data signal 32 finally reaches the MS, and the MS transmits the second response signal to indicate the receiving. The transmission module 35 is further configured to transmit the second response signal according to the message 34. To be more specific, the data signal 32 received by the MS may be correct and may be erroneous. If it is correct, the second response signal is an acknowledgement signal. On the other hand, if the data signal 32 received by the MS is erroneous, the second response signal is a negative-acknowledgement signal. It means that the apparatus 3 can relay an acknowledgement signal and negative-acknowledgement signal in the multi-hop relay network.
As mentioned, the apparatus 3 can be a relay station in a multi-hop relay system. Please refer to
In the multi-hop relay system 4, each of the RS1 and RS2 (along the routing path from BS to MS) should buffer the data signal sent from its predecessor, forward the data signal to its successor regardless of the correctness of the data signal, report a first response signal to its predecessor in response to the receiving of the data signal, wherein the first response signal may be an acknowledgement signal (ACK) or a negative-acknowledgement signal (NACK). Furthermore, each of the RS1 and RS2 should relay a second response signal that originally comes from the MS to its successor, wherein the second response signal may be an ACK or an NACK.
According to the above configurations, the present invention provides an apparatus to relay a data signal regardless of the correctness of the data signal. This can utilize the pre-schedule bandwidths for multiple links to improve the performance of the downlink relay system in the multi-hop relay network by the apparatus of the invention.
A second embodiment of the present invention is shown in
Step 502 is executed to receive a second response signal intended to be transmitted to a base station, wherein the second response signal may be acknowledgement signal or a negative-acknowledgement signal depending on the correctness of the data signal received by a mobile station in the multi-hop relay network. Then, step 503 is executed to transmit the second response signal according to the message. Please refer to
If it is not in step 504, step 507 is executed to generate a negative-acknowledgement signal as the first response signal, and then step 508 is executed to transmit the first response signal according to the message in response to the receiving step 500.
It is noted that the steps 505, 506 may be executed before the steps 502, 503. Similarly, the steps 507, 508 may be executed before the steps 502, 503. The executing sequence depends on a scheduling algorithm of the BS. In addition to the aforementioned steps, the second embodiment is able to execute all the functions and operations described in the first embodiment.
Each of the aforementioned methods can use a tangible machine-readable medium for storing a computer program to execute the aforementioned steps. The tangible machine-readable medium can be a floppy disk, a hard disk, an optical disc, a flash disk, a tape, a database accessible from a network or a storage medium with the same functionality that can be easily thought by people skilled in the art.
According to the aforementioned descriptions, the present invention provides a new approach to relay a data signal from its predecessor to its successor regardless of the correctness of the data signal. This will effectively utilize the pre-schedule bandwidths to improve the performance of the relay system in the multi-hop relay network. The present invention can be utilized in multi-hop relay network, such as those based on the IEEE 802.16j standard.
The above disclosure is related to the detailed technical contents and inventive features thereof. People skilled in this field may proceed with a variety of modifications and replacements based on the disclosures and suggestions of the invention as described without departing from the characteristics thereof. Nevertheless, although such modifications and replacements are not fully disclosed in the above descriptions, they have substantially been covered in the following claims as appended.
This application claims the benefit of U.S. Provisional Application Ser. No. 60/892,725 filed on Mar. 2, 2007, the disclosures of which are incorporated herein by reference in their entirety.
Number | Date | Country | |
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60892725 | Mar 2007 | US |