This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2010-066941, filed Mar. 23, 2010; the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to, for example, a wireless communication device.
In a wireless communication device using IEEE (Institute of Electrical and Electronics Engineers) 802.11 standard, a technique of suppressing interference from an adjacent channel is proposed.
For example, Jpn. Pat. Appln. KOKAI Publication Nos. 2008-228091 and 11-196043 disclose a method of controlling the transfer speed of a base station side that transmits a wireless signal in accordance with a use state of an adjacent channel, and a method of controlling transmission power from a transmission side so as to reduce interference from an adjacent channel. However, in these techniques, there is the tendency that the burden is on the transmission side.
On the other hand, as a technique on the side of a terminal station that receives a wireless signal, a method of detecting an adjacent channel to control the width of the passband of a filter is disclosed in Jpn. Pat. Appln. KOKAI Publication No. 2006-121146. In this case, however, there is a tendency that the chip area on the reception side increases, and the cost is high.
First to fourth embodiments will be described below with reference to the drawings. In the description, common reference numerals denote common parts in the diagrams.
In general, according to one embodiment, a wireless communication device includes a receiver, a physical layer processor, a MAC layer controller, and a channel setting unit. The receiver receives wireless signals received by using a plurality of communication channels as a baseband signal. The physical layer processor processes a physical layer of the baseband signal received by the receiver. The MAC layer controller recognizes a first frequency band used by a first communication channel in the communication channels, based on the baseband signal supplied from the physical layer processor. The MAC layer controller determines whether a second frequency band used by a second communication channel different from the first communication channel in the communication channels is adjacent to the first frequency band or not. The channel setting unit supplies the first frequency band supplied from the MAC layer controller and used by the first communication channel to the receiver. The channel setting unit controls the physical layer processor depending on information as to whether the first frequency band supplied from the MAC layer controller is adjacent to the second frequency band or not.
A wireless communication device and a wireless communication method according to a first embodiment will be described with reference to
As illustrated in the diagram, the wireless LAN system according to the embodiment includes a wireless LAN base station 100, a wireless LAN terminal station 200, and a wireless LAN terminal station 300 among which wireless communication is performed. A unit constructed by the wireless base station 100 and at least one wireless terminal station 200 is called a basic service set (BSS) in the IEEE 802.11 standard. Although the number of wireless terminal stations included in the BSS is two in
However, as long as desired performance is obtained, the number of antennas mounted on the wireless LAN base station 100 and the wireless LAN terminal stations 200 and 300 may be one, and the number is not limited.
<Communication Channel>
As shown in
As shown in
<Configuration of Wireless LAN Terminal Station 200>
Next, the configuration of the wireless LAN terminal stations 200 and 300 described in
As described above, the wireless LAN terminal station 200 includes three antennas. Specifically, the wireless LAN terminal station 200 has a plurality of (three) configurations each made by an antenna and a communication module corresponding to the antenna. Further, the wireless LAN terminal station 200 includes a MAC controller 240 controlling the plurality of communication modules and antennas. The communication module includes an RF (Radio Frequency) unit, a physical layer processor, and a MAC layer processor.
The wireless LAN terminal station 200 includes antennas 211, 221, and 231, communication modules 210, 220, and 230 corresponding to the antennas 211, 221, and 231, respectively, and a MAC controller 240. Each of the communication modules 210, 220, and 230 may be formed by a single chip, or the communication modules 210, 220, and 230 may be together formed into a single chip.
The antenna 211 performs wireless communication using the first communication channel, the antenna 221 performs wireless communication using the second communication channel and, further, the antenna 231 performs wireless communication using the third communication channel.
When the first to third communication channels are adjacent as shown in
Next, the communication modules 210, 220, and 230 will be described. The communication module 210 includes an RF unit 212, a physical layer processor 213, and a MAC layer processor 214. Similarly, the communication module 220 includes an RF unit 222, a physical layer processor 223, and a MAC layer processor 224. The communication module 230 includes an RF unit 232, a physical layer processor 233, and a MAC layer processor 234. In the wireless LAN terminal station 200 to be described below, the communication modules 210, 220, and 230 have the same configuration except for the reference numerals, and the antennas 211, 221, and 231 have the same configuration except for the reference numerals. Consequently, description will be given by paying attention to the antenna 211 and the communication module 210 corresponding to the antenna 211.
<Details of Wireless LAN Terminal Station 200>
The antenna 211 receives a wireless signal (RF signal: analog signal) transmitted from the wireless LAN base station 100 in the BSS and transmits a wireless signal toward the wireless LAN base station 100.
At the time of receiving a wireless signal, the RF unit 212 down-converts a wireless signal (analog signal) in, for example, the 5 GHz band received by the antenna 211 and supplies the resultant signal to the physical layer processor 213. That is, by performing the down-conversion, a baseband signal of the received signal is obtained. At the time of transmitting a wireless signal, the RF unit 212 up-converts an analog signal (baseband signal) given from the physical layer processor 213 to a wireless signal in the 5 GHz band and supplies the resultant signal from the antenna 211.
Next, the physical layer processor 213 will be described with reference to
As shown in the diagram, the physical layer receiver 213-2 includes an A/D converter 213a (written as A/D in the diagram), a demodulator/decoder 213b, a channel setting unit 213c, and a reception signal detector 213d. The reception signal detector 213d includes a holding unit 213d-1, a controller 213d-3, and a detector 213d-2. Although the physical layer receiver 213-2 includes a band-limiting filter (analog, digital), it is not shown.
The A/D converter 213a converts a received signal (baseband signal (analog signal) given from the RF unit 212 to a digital signal. The digital signal is output to the demodulator/decoder 213b and the reception signal detector 213d.
The demodulator/decoder 213b demodulates the digital signal supplied from the A/D converter 213a. Specifically, when a signal indicating that a wireless signal is detected is received from the reception signal detector 213d, the digital signal is demodulated from the A/D converter 213a. The demodulator/decoder 213b performs, for example, orthogonal frequency division multiplexing (OFDM) demodulation and error correction decoding on a digital signal exceeding a threshold voltage to generate a reception frame and outputs the reception frame to the MAC layer processor 214.
The channel setting unit 213c receives information of the available frequency bands from the MAC layer processor 214. That is, the channel setting unit 213c receives information of frequency bands in which the wireless LAN base station 100 and the wireless LAN terminal station 200 may perform wireless communication in the frequency bands of 6 GHz or less shown in
Next, the reception signal detector 213d will be described. As described above, the reception signal detector 213d includes the holding unit 213d-1, the detector 213d-2, and the controller 213d-3. The holding unit 213d-1 holds, for example, a threshold level determining whether a received signal is demodulated or decoded in accordance with the intensity of the received signal. The threshold levels are expressed as thresholds th1 and th2, and it is assumed that the relation of threshold th1>threshold th2 is satisfied.
The detector 213d-2 detects a digital signal supplied from the A/D converter 213a in accordance with the threshold level which is set by the controller 213d-3.
In the case where the detector 213d-2 sets the threshold th2 as the threshold level, the detector 213d-2 determines that when a received signal having a signal intensity higher than the threshold th2 is received, the possibility that the signal is a wireless LAN signal is high. On the other hand, as shown in
On the other hand, in the case where the detector 213d-2 sets the threshold th1 as the threshold level, when a signal having a signal intensity higher than the threshold th1 is received, the detector 213d-2 determines that the possibility that the received signal is a wireless LAN signal is high. That is, the detector 213d-2 determines that the possibility that the received signals having signal intensities thd and thf at times t5 and t7 are wireless LAN signals is high.
The controller 213d-3 receives information of the first to third communication channels from the channel setting unit 213c. The controller 213d-3 refers to the holding unit 213d-2 and selects the threshold th1 or th2 based on the information received from the channel setting unit 213c. Specifically, when it is notified from the channel setting unit 213c that the first to third frequency bands used by the wireless LAN terminal station 200 are adjacent (refer to
On the other hand, when it is notified from the channel setting unit 213c that the first to third frequency bands are apart from one another (refer to
Next, the physical layer transmitting unit 213-1 will be briefly described. The physical layer transmitting unit 213-1 receives a transmission frame and a transmission rate from the MAC layer processor 214. The physical layer transmitting unit 213-1 performs redundant coding and OFDM modulation on the received transmission frame and further performs D/A conversion to obtain an analog signal, and outputs the analog signal as a transmission signal to the RF unit 212. By the physical layer transmitting unit 213-1, the transmission frame is transmitted to the wireless LAN base station 100 via the RF unit 212 and the antenna 211 at a transmission rate determined by the MAC layer processor 214.
Now, referring again to
Finally, the MAC controller 240 will be described. Based on the frequency bands used by the first to third communication channels supplied from the MAC layer processors 214, 224, and 234, the MAC controller 240 supplies the information to the physical layer processors 213, 223, and 233. That is, the MAC controller 240 supplies the information indicating whether the first to third communication channels are adjacent or not to the physical layer processors 213, 223, and 233.
<Operation of Wireless LAN Terminal Station 200>
Next, the operation of the wireless LAN terminal station 200 will be described with reference to
First, the wireless LAN terminal station 200 receives a wireless signal (beacon frame) by the antenna 211 (step S0). The received wireless signal is down-converted by the RF unit 212 and, after that, the signal is given to the physical layer receiver 213-2. After that, the wireless signal is subjected to pre-determined processing in the physical layer receiver 213-2, and the obtained frame is sent to the MAC layer processor 214. The MAC layer processor 214 recognizes the available frequency bands by referring to the received frame (beacon frame) (step S1).
Next, based on the available frequency bands obtained in step S1, the MAC controller 240 outputs a distribution state of the first to third communication channels (whether they are adjacent or not) to the physical layer receiver 213-2 (channel setting unit 213c) via the MAC layer processor 214 (step S2). In this manner, the channel setting unit 213c outputs the information indicating whether the first to third frequency bands are adjacent or not to the reception signal detector 213d (the controller 213d-3).
In the case where the first to third frequency bands are adjacent (YES in S3), the controller 213d-3 refers to the holding unit 213d-1 and sets (rises) the threshold level to the threshold th1 in the detector 213d-2 (S4).
In the case where the first to third frequency bands are not adjacent, that is, are apart from each other in step S3 (NO in S3), the controller 213d-3 refers to the holding unit 213d-1 and sets the threshold level to the threshold th2 in the detector 213d-2 (S5). In the case where the threshold level is initially set to the threshold th2, if the first to third frequency bands are not adjacent, that is, are apart from each other in step S3 (NO in S3), the controller 213d-3 maintains the threshold level of the detector 213d-2 (S5).
The wireless communication device according to the first embodiment may produce improved communication quality while realizing high-speed communication.
That is, in the wireless communication device according to the first embodiment, the threshold level of detecting a received signal of the detector 213d-2 may be changed according to the distribution states of the first to third frequency bands used. The channel setting unit 213c supplies the distribution of the first to third frequency bands used for the wireless communication, that is, information indicating whether the first to third frequency bands are adjacent or not to the reception signal detector 213d. Even in the case where the first to third frequency bands used are adjacent and the first to third communication channels interfere with each other as shown in
A second embodiment will now be described. In a wireless communication device and a wireless communication method according to the second embodiment, by narrowing the passband of a band limiting filter of the wireless LAN terminal station 200, entry of an interference signal is prevented. For example, when attention is paid to the second communication channel in
The physical layer receiver 213-2 according to the embodiment includes an A/D converter 513a, a demodulator/decoder 513b, and a channel setting unit 513e in place of the A/D converter 213a, the demodulator/decoder 213b, and the channel setting unit 213c shown in
First, the analog filter 513a will be described. The analog filter 513a filters an analog signal obtained by down-conversion in the RF unit 512. That is, the bandwidth is limited. When the first communication channel has, for example, a bandwidth from (a−40) to a [MHz] as shown in
The digital filter 513c samples the first communication channel of 40 MHz shown in
The channel setting unit 513e controls the analog filters 513a and 513c and the RF unit 512 based on the information of the available frequency bands supplied from the MAC layer processor 540. That is, the channel setting unit 513e receives information that the first to third communication channels are adjacent or distributed (apart) at predetermined frequency intervals from the MAC layer processor 514. In the case where the first to third communication channels are adjacent as shown in
As shown in the diagram, the analog filter 513a and the digital filter 513c are controlled by the channel setting unit 513e and are switched, as necessary, to any of the filter of
The channel setting unit 513e supplies the frequency band of the first communication channel and the width of the frequency band supplied from the MAC layer processor 214 to the RF unit 211. Consequently, the RF unit 211 may recognize the frequency band and the width of the frequency band and may perform wireless communication with the wireless LAN base station 100.
<Operation of Wireless LAN Terminal Station 200>
Next, the operation of the wireless LAN terminal station 200 according to the embodiment will be described with reference to
In the case where the first to third communication channels are adjacent in step S3 (YES in S3), the channel setting unit 513e may control the analog filter 513a and the digital filter 513c to maintain the passband width, not to narrow the passband width. That is, when the band widths of the analog filter 513a and the digital filter 513c are W2 and W′2, respectively, even in the case where the first to third communication channels are adjacent to each other (YES in S3), the band width is maintained.
In the case where the first to third communication channels are apart in step S3 (NO in S3), the channel setting unit 513e may control the analog filter 513a and the digital filter 513c to widen the passband width from W2 and W′2 to W1 and W′1, respectively.
The wireless communication device according to the second embodiment may produce improved communication quality while realizing high-speed communication.
In the wireless communication device according to the second embodiment, the channel setting unit 513e controls the analog filter 513a and the digital filter 513c in accordance with information of the first to third communication channels supplied from the MAC layer processor 214. In the case where the first to third communication channels are adjacent and it is feared that signals using the first to third communication channels become interference signals, by narrowing the passband of each of the analog filter 513a and the digital filter 513c, entry of an interference signal may be prevented. For example, when the antenna 521 receives a second communication channel as a desired signal, wireless signals using the first and third communication channels may be prevented from entering, as interference signals, a wireless signal using the second communication channel. In such a manner, the communication quality may be improved. In the case where the first to third communication channels are apart as shown in
Next, a wireless communication device and a wireless communication method according to a third embodiment will be described. In the wireless communication device and the wireless communication method according to the embodiment, at the time of converting an analog signal received by an RF unit to a digital signal, the number of valid bits is set according to distributions of the first to third communication channels. The wireless LAN terminal station 200 according to the embodiment will be described with reference to
The physical layer receiver 213-2 according to the embodiment is different from that in
First, the A/D converter 613a will be described. The A/D converter 613a includes an A/D core 613a-1 and a bias current supplying unit 613a-2. The A/D core 613a-1 converts an analog signal received by an antenna 211 and down-converted by an RF unit 612 to a digital signal in accordance with a current value supplied from the bias current supplying unit 613a-2. The bias current supplying unit 613a-2 supplies the current value according to the distribution state of the first to third communication channels supplied from the channel setting unit 613c to the A/D core 613a-1. Currents output from the bias current supplying unit 613a-2 are expressed as currents I1 and I2. It is assumed that the relation of current I2>current I1 is satisfied. Specifically, when it is notified from the channel setting unit 613c that the first to third communication channels are adjacent each other as shown in
When it is notified from the channel setting unit 613c that the first to third communication channels are apart as shown in
<Operation of Wireless LAN Terminal Station 200>
Next, the operation of the wireless LAN terminal station 200 will be described with reference to
In the case where the first to third communication channels are apart from one another in step S3 (NO in S3), the bias current supplying unit 613a-2 outputs the current I2 to the A/D core 613a-2 (S21). The A/D core 613a-2 converts the analog signal supplied from the RF unit 612 to a digital signal with the number of valid bits smaller than that in step S20.
The wireless communication device and the wireless communication method according to the third embodiment may produce improved communication quality while realizing high-speed communication.
In the wireless communication device and the wireless communication method according to the third embodiment, the channel setting unit 613c controls the A/D converter 613a in accordance with information of the first to third communication channels supplied from the MAC layer processor 614. In the case where the first to third communication channels are adjacent and there is the possibility that an interference signal enters, the channel setting unit 613c controls the bias current supplying unit 613a-2 to set the current value to I1. In this manner, even in the case where an interference signal enters and a desired waveform is deformed, by setting the number of valid bits of the A/D converter 613a high, the A/D conversion may be finely executed on the received signal and the original signal waveform may be reproduced.
Further, the wireless communication device according to the third embodiment may suppress power consumption, in addition to the above effect. In the case where the distributions of the first to third communication channels are apart as shown in
Next, a wireless communication device and a wireless communication method according to a fourth embodiment will be described. In the wireless communication device and the wireless communication method according to the embodiment, the gain of an input level of a received signal which is input to an A/D converter is changed according to distributions of the first to third embodiments.
The wireless LAN terminal station 200 according to the embodiment will be described with reference to
As shown in the diagram, the physical layer receiver 213-2 according to the embodiment includes an A/D converter 713a, a demodulator/decoder 713b, and a channel setting unit 713c in place of the A/D converter 213a, the demodulator/decoder 213b, and the channel setting unit 213c shown in
First, the A/D converter 713a will be described. The A/D converter 713a supplies a digital signal component to the demodulator/decoder 713b and the reception gain controller 713d.
The reception gain controller 713d includes an intensity measuring unit 713d-1 and a controller 713d-2. The intensity measuring unit 713d-1 measures the voltage value of the digital signal supplied from the A/D converter 713a.
The controller 713d-2 refers to the intensity of the voltage measured by the intensity measuring unit 713d-1. The controller 713d-2 controls the reception gain of the RF unit 212 so as to match the input level of the received signal with a target value which is set in the RF unit 212 by the channel setting unit 713c which will be described later. Specifically, the controller 713d-2 refers to the signal intensity and, when the input level of the received signal received by the RF unit 212 is higher than the target value supplied from the channel setting unit 713c, decreases the input level of the received signal so as to match the target value which is set by the channel setting unit 713c.
On the other hand, the controller 713d-2 refers to the signal intensity and, when the input level of the received signal received by the RF unit 212 is lower than the target value supplied from the channel setting unit 713c, increases the input level of the received signal so as to match the target value which is set by the channel setting unit 713c. In such a manner, the controller 713d-2 controls the gain of the input level of the received signal. By such control, the input level of a signal received by the RF unit 212 is made constant.
The channel setting unit 713c sets the target value (written as “target” in
For example, when the information that the first to third communication channels are adjacent is received from the MAC layer processor 214, the channel setting unit 713c sets so as to increase the target value of the input level of a signal received by the RF unit 212. Specifically, in the case as shown in
On the other hand, when the information that the first to third communication channels are apart is received from the MAC layer processor 214, the channel setting unit 713c sets so as to decrease the target value of the input level of a signal received by the RF unit 212. Specifically, in the case as shown in
As shown in the conceptual diagram, the level received by the RF unit 212 and, after that, input to the A/D converter 713a is set to, for example, 0.8 V with respect to the range width of 1.0 V.
<Operation of Wireless LAN Terminal Station 200>
Next, the operation of the wireless LAN terminal station 200 having the above configuration will be described with reference to
In the case where the first to third communication channels are adjacent in step S3 (YES in S3), the channel setting unit 713c sets so as to increase the target value of the input level of a signal received by the RF unit 212 (S30). In such a manner, the input level of a wireless signal received by the RF unit 212 is set.
The controller 713d-2 refers to the signal intensity measured by the intensity measuring unit 713d-1 and, when the signal intensity is higher than the target value supplied from the channel setting unit 713c (YES in S31), decreases the input level of the received signal so as to match the target value which is set by the channel setting unit 713c (S32). After that, the A/D converter 713a converts the received signal whose input level is set to a digital signal (S33). The controller 713d-2 refers to the signal intensity and, when the input level of the received signal is about a target value (NO in S31), maintains the intensity of the received signal, and performs the process in step S33.
In the case where the first to third communication channels are apart in step S3 (NO in S3), the channel setting unit 713c sets so as to decrease the target value of the input level of a signal received by the RF unit 212 (S34). In such a manner, the input level of a wireless signal received by the RF unit 212 is set.
The controller 713d-2 refers to the signal intensity measured by the intensity measuring unit 713d-1 and matches the signal intensity with the target value supplied from the channel setting unit 713c (S35). Specifically, when the input level of a received signal referred to decreases and becomes about the target value, the controller 713d-2 maintains the intensity of the received signal, and performs the process in step S33 at the input level.
On the other hand, when the input level of a received signal is lower than the target value, the controller 713d-2 increases the input level of the received signal to the target value, and performs the process in step S33. When the input level of a received signal is higher than the target value, the controller 713d-2 decreases the input level of the received signal to the target value, and performs the process in step S33.
The wireless communication device and the wireless communication method according to the fourth embodiment may produce improved communication quality while realizing high-speed communication.
In the wireless communication device and the wireless communication method according to the fourth embodiment, the channel setting unit 713c sets a target value of the input level of a received signal in the reception gain controller 713d and the RF unit 212 in accordance with whether frequency bands used by the first to third communication channels are adjacent to each other or not, and the controller 713d-2 controls the RF unit 212 so that the input level of the received signal becomes close to the target value.
When the first to third communication channels are distributed so as to be apart from each other and the signal intensity of a received signal is about the target value set by the channel setting unit 713c, the signal intensity is maintained. That is, the gain of the received signal is maintained. When the signal intensity of the received signal is lower than the target value which is set by the channel setting unit 713c, the signal intensity is increased, and the input level is matched with the target value.
When the frequency bands used by the first to third communication channels are distributed so as to be adjacent and the signal intensity of a signal to be received (for example, the first communication channel) is higher than the target value, the controller 713d-2 decreases the signal intensity of a wireless signal received by the RF unit 212.
That is, the controller 713d-2 does not control the input level of a signal received by the RF unit 212 in accordance with the input level measured by the intensity measuring unit but may set the input level of the received signal based on whether the first to third communication channels are adjacent or not. In other words, based solely on the information of whether the frequency bands used by the first to third communication channels are adjacent to each other or not, the proper input level of a signal received by the RF unit 212 may be set. That is, the communication quality may be improved.
When the signal intensity of a received wireless signal has a predetermined amplitude, the reception gain controller 713d may fix the value of the gain of the wireless signal, i.e., stop it fluctuating.
In the case where the first to third communication channels are adjacent to each other as shown in
In contrast, as shown in
On the other hand, in the case where the first to third communication channels are apart from each other as shown in
Although the case where the first to third communication channels are adjacent to each other has been described in the first to fourth embodiments, for example, the effect may be produced also in the case where only the first and second communication channels are adjacent to each other. In this case, since the antennas 211 and 221 receive wireless signals using the first and second communication channels adjacent to each other, the wireless signal using the second communication channel is an interference signal for the antenna 211, and a wireless signal using the first communication channel is an interference signal for the antenna 221. By executing the operations in the case of the channels being adjacent described in the first to fourth embodiments on the communication modules 210 and 220, the effects (1) to (5) may be produced.
Even in the case where the first to third communication channels are apart from one another, when wireless signals used by other wireless communication system are distributed so as to be adjacent to each of the first to third communication channels or so as to sandwich the first to third communication channels, operations similar to those in the case where the first to third communication channels are adjacent to each other may be performed. In this case, it is only necessary to include information of a communication channel used by another wireless communication system in a received beacon frame.
Although the physical layer processor 213 has been described in the first to fourth embodiments, the physical layer processor 213 obtained by combining those configurations may be also employed. Specifically, the physical layer processor 213 may simultaneously include the reception signal detector 213d, the analog filter 513a, the digital filter 513c, the A/D converter 613a, and the reception gain controller 713d.
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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2010-066941 | Mar 2010 | JP | national |