WIRELESS TRANSMISSION DEVICE AND CONTROL METHOD THEREFOR
20230208450 · 2023-06-29
Assignee
Inventors
Cpc classification
H04W52/52
ELECTRICITY
Y02D30/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H04W52/42
ELECTRICITY
International classification
H04B1/00
ELECTRICITY
Abstract
A wireless transmission device includes at least: a modulator to which the input signals of the plurality of channels are input; and a transmitter that includes a power amplifier and transmits a signal output by the modulator from the antenna. When it is necessary to increase output power of a signal associated to one input signal among the input signals of the plurality of channels and transmitted from the antenna, reserve power up to a maximum value of output power of another input signal among the input signals of the plurality of channels is checked. A control signal is supplied with the transmitter or the modulator so as to increase output power of a signal associated to the one input signal within a range of the reserve power and transmitted from the antenna.
Claims
1. A wireless transmission device that converts input signals of a plurality of channels into signals of high frequency bands having different frequency bands from each other and then transmits the signals from one antenna, the wireless transmission device comprising at least: a modulator to which the input signals of the plurality of channels are input; and a transmitter that includes a power amplifier and transmits a signal output by the modulator from the antenna, wherein when it is necessary to increase output power of a signal associated to one input signal among the input signals of the plurality of channels and transmitted from the antenna, reserve power up to a maximum value of output power of another input signal among the input signals of the plurality of channels is checked, and a control signal is provided to the transmitter or the modulator so as to increase output power of a signal associated to the one input signal within a range of the reserve power and transmitted from the antenna.
2. The wireless transmission device according to claim 1, wherein a signal transmitted from the antenna is received, and the control signal associated to a comparison result between a received signal level of the received signal and a threshold is provided to the transmitter or the modulator.
3. The wireless transmission device according to claim 1, wherein the control signal is a signal associated to one of the input signals of the plurality of channels, and performs control to increase, decrease, or maintain output power of a signal transmitted from the antenna.
4. The wireless transmission device according to claim 1, wherein the input signals of the plurality of channels are intermediate frequency (IF) signals, and the control signal is provided to the transmitter.
5. The wireless transmission device according to claim 1, wherein the input signals of the plurality of channels are base band (BB) signals, and the control signal is provided to the modulator.
6. A wireless transmission system comprising: a wireless transmission device according to claim 1; and another wireless transmission device that receives a signal transmitted from the wireless transmission device and outputs the control signal.
7. A control method of a wireless transmission device that converts input signals of a plurality of channels into signals of high frequency bands having different frequency bands from each other and then transmits the signals from one antenna, wherein the wireless transmission device includes at least: a modulator to which the input signals of the channels are input; and a transmitter that includes a power amplifier and transmits a signal output by the modulator from the antenna, wherein, when it is necessary to increase output power of a signal associated to one input signal among the input signals of the plurality of channels and transmitted from the antenna, reserve power up to a maximum value of output power of another input signal among the input signals of the plurality of channels is checked, and the transmitter or the modulator is controlled so as to increase output power of a signal associated to the one input signal within a range of the reserve power and transmitted from the antenna.
8. The control method of a wireless transmission device according to claim 7, wherein a signal transmitted from the antenna is received, and the control signal associated to a comparison result between a received signal level of the received signal and a threshold is provided to the transmitter or the modulator.
9. The control method of a wireless transmission device according to claim 7, wherein the control signal is a signal associated to one of the input signals of the plurality of channels, and performs control to increase, decrease, or maintain output power of a signal transmitted from the antenna.
10. The control method of a wireless transmission device according to claim 7, wherein the input signals of the plurality of channels are intermediate frequency (IF) signals, and the control signal is provided to the transmitter.
11. The control method of a wireless transmission device according to claim 7, wherein the input signals of the plurality of channels are base band (BB) signals, and the control signal is provided to the modulator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Exemplary features and advantages of the present invention will become apparent from the following detailed description when taken with the accompanying drawings in which:
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EXAMPLE EMBODIMENT
[0052] Before describing an example embodiment of the present invention, the background art of the present invention and problems thereof will be described with reference to the drawings.
[0053] In a microwave digital wireless communication system in which a plurality of radio CHs are transmitted and received by one antenna, as illustrated in
[0054] In this system, since the Tx of the single carrier transmission system as illustrated in
[0055] On the other hand, in recent years, with the development of electronic devices, a system configuration as illustrated in
[0056]
[0057] The Tx (transmitter 252) in the wireless communication system illustrated in
[0058] In a case of a system configuration in which the PA (power amplifier 268) is shared by a plurality of CHs as illustrated in
[0059] Therefore, since it is necessary to take a large backoff, it is also necessary to lower the maximum value of the transmission power in each CH as compared with the single carrier transmission. Referring to
[0060] In the case of a system configuration in which one PA (power amplifier 268) is shared by the plurality of CHs as illustrated in
[0061] On the other hand, there is a constraint that it is necessary to lower the maximum value of the transmission power in each CH due to an increase in the required backoff accompanying the addition of the signals of the plurality of CHs. In the transmission power control in which the transmission power control is independently performed for each CH, when there is a difference in the transmission power between CHs, there is a problem that the input level of each CH cannot be optimized with respect to the input level condition of the PA, and the performance of the PA cannot be maximized.
Example Embodiment of Superordinate Concept
[0062] First, a wireless transmission device and a control method thereof according to an example embodiment of a superordinate concept of the present invention will be described.
[0063] The wireless transmission device of
[0064] Further, in the wireless transmission device of
[0065] In the wireless transmission device of
[0066] As described above, in the transmission signal transmitted from one antenna 503, the transmission power of each channel can be optimized by performing transmission power control in cooperation among a plurality of channels. In this way, the performance of the power amplifier included in the transmitter 502 can be maximized, and the reception characteristics of the entire system including the wireless transmission device can be improved. Hereinafter, more specific example embodiments will be described in detail.
First Example Embodiment
[0067] Next, a wireless transmission device and a control method thereof according to a first example embodiment of the present invention will be described. In the present example embodiment, a case where transmission power is controlled in the IF frequency band will be described as an example.
[0068]
[0069] The present example embodiment relates to a microwave digital wireless communication system that transmits and receives a plurality of radio channels by one antenna. In the present example embodiment, it is assumed that a plurality of channels are transmitted by one wireless transmission device (MOD 51 and Tx 52) as illustrated in
[0070] The wireless transmission device of
[0071] A configuration example of the transmitter 52 (Tx) of the present example embodiment will be described with reference to
[0072] The BPF 151 and the BPF 152 pass only the signal of the frequency band of each channel for the input IF signal (IF_CH_150). The gain controllers 153 and 154 perform level control of transmission power according to an input control signal (CH1_Gain_159 in the gain controller 153 and CH2_Gain_160 in the gain controller 154). The adder 155 adds the IF signals (IF_CH1_153, IF_CH2_154) associated to each channel in which the level of the transmission power is adjusted by the gain controllers 153 and 154. The mixer 156 converts the output signal (IF_CH_155) of the adder 155 from the IF band to the RF band. The BPF 157 passes only a signal of a desired frequency band. The power amplifier 158 is, for example, a high-output analog power amplifier, and amplifies and outputs the RF signal (RF_CH_157) from the BPF 157.
[0073] The IF signal (IF_CH_150) input to the transmitter 52 (Tx) is separated into signals (IF_CH1_151 and IF_CH2_152) in the respective frequency bands of CH1 and CH2 by the BPF 151 and the BPF 152.
[0074] Next, the level control of the transmission power of CH1 and CH2 is performed by the control signal (CH1_Gain159, CH2_Gain160) calculated based on the current transmission power of CH1 and CH2, and the signals of CH1 and CH2 are added by the adder 155.
[0075] Next, after conversion from the IF band to the RF band by the mixer 156, only a signal in a predetermined frequency band is extracted by the BPF 157, amplified to RF_CH_157 by the power amplifier 158 (PA 158), and emitted from the antenna 53 as a radio wave.
Operation of Example Embodiment
[0076] Next, transmission power control of the wireless transmission device according to the present example embodiment will be schematically described with reference to
[0077]
[0078] CH1 and CH2 in the following description of the operation are signals from a wireless transmission device 301 to a wireless transmission device 305 in
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[0081] In
[0082] For easy understanding, the modulation scheme is 128 QAM as an example.
[0083] In general, automatic transmit power control (ATPC) is a function of controlling transmission power of an opposing wireless transmission device so that a received signal level (hereinafter, RSL) does not fall below a certain threshold. The communication quality is secured by the control of the transmission power.
Operation of Background Art
[0084] As an outline, CH1 in a direction from the wireless transmission device 12 to the wireless transmission device 32 in
[0085] First, the receiver 27 (Rx) of the wireless transmission device 32 detects a received signal level RSL (RL1_21) of the signal (T_RF_CH1_5) received from the opposing wireless transmission device 12.
[0086] Next, in the transmission power controller 28 (Tx PWR CNT), the received signal level RSL (RL1_21) is compared with the ATPC threshold under the following conditions, and a control policy for the transmitter 2 of the opposing wireless transmission device 12 is determined based on the comparison result. [0087] RL1_21 > ATPC threshold: Tx Power Down of the transmitter 2 (Tx) [0088] RL1_21 = ATPC threshold: Tx Power Hold of the transmitter 2 (Tx) [0089] RL1_21 < ATPC threshold: Tx Power Up of the transmitter 2 (Tx)
[0090] Any one of the above Down/Hold/Up control signals is superimposed and transmitted to CH1′ in the direction from the wireless transmission device 32 to the wireless transmission device 12. In the wireless transmission device 12, the demodulator 6 (DEM) extracts this signal from the reception signal, and controls the transmission power of the transmitter 2 (Tx) for CH1 based on the Down/Hold/Up control signal via the transmission power controller 8 (Tx PWR CNT).
[0091] First, in a case where there is no inter-CH cooperation in the ATPC as the background art (see
[0092] On the other hand, it is assumed that CH2 has a poor propagation state and the received signal level RSL in the receiver 306 (Rx) is lower than the threshold of ATPC. In that case, in order to maintain a predetermined level of communication quality, it is necessary to increase the transmission power of CH2 in the transmitter 302 (Tx) in the opposing wireless transmission device 301. Here, the transmission power of CH2 is gradually increased in the transmitter 302 (Tx), but even after the Max Power of the ATPC is reached, for example, if the received signal level RSL is lower than the threshold of the ATPC, the transmission power cannot be further increased.
Operation of Example Embodiment
[0093] Next, in the case of the inter-CH cooperation in ATPC which is also the proposed method (see
[0094] On the other hand, it is assumed that CH2 has a poor propagation state and the received signal level RSL in the receiver 406 (Rx) is lower than the threshold of ATPC. In that case, in order to maintain a predetermined level of communication quality, it is necessary to increase the transmission power of CH2 in the transmitter 402 (Tx) in the opposing wireless transmission device 401.
[0095] In the present example embodiment, since CH1 and CH2 cooperate in the ATPC, even when the transmission power of the own CH becomes the Max Power of ATPC, the transmission power of the own CH can be further increased by +α [dB] from the Max Power of ATPC by adjusting the transmission power level of the other CH.
[0096] For the increase in transmission power of +α [dB], as an example, a table is prepared in advance for each modulation scheme as illustrated in
[0097] That is, in the transmission power control of the present example embodiment, the transmission power of the own CH can be further increased by +α [dB] than the Max Power of ATPC by providing the own CH with the margin of the backoff caused by the decrease in the level of the other CH. The margin of the backoff caused by the decrease in the level of the other CH is an example of a reserve power up to a maximum value of output power of the other CH. Referring to
[0098] In the transmission power control of the present example embodiment, the transmission power of the own CH can be further increased by +α [dB] from the Max Power of ATPC by providing the own CH with a margin of the backoff caused by the decrease in the transmission power of the other CH. The margin of the backoff caused by decrease in the transmission power of the other CH is an example of an example of a reserve power up to a maximum value of output power of the other CH. In
[0099] As a result of the transmission power control in which CHs cooperate in this manner, the received signal level RSL in the receiver 406 (Rx) of the wireless transmission device 405 can be improved, and the reception characteristics of the system can be improved.
[0100] Next, more details of the operation of the present example embodiment will be described based on the flowcharts of
[0101] First, the receiver 65 (Rx) of the wireless transmission device 67 detects a received signal level RSL (RL1_71) of the signal (T_RF_CH1_55) received from the opposing wireless transmission device 57 for CH1 (S11).
[0102] Next, the transmission power controller 66 (Tx PWR CNT) of the wireless transmission device 67 compares the received signal level RSL (RL1_71) with the ATPC threshold under the following conditions (S12). [0103] RL1_71 > ATPC threshold: Tx Power Down of the transmitter 52 (Tx) of the wireless transmission device 57 [0104] RL1_71 = ATPC threshold: Tx Power Hold of the transmitter 52 (Tx) of the wireless transmission device 57 [0105] RL1_71 < ATPC threshold: Tx Power Up of the transmitter 52 (Tx) of the wireless transmission device 57
[0106] When the received signal level RSL exceeds the ATPC threshold, the transmission power controller 66 (Tx PWR CNT) generates a signal (TP1_73) for decreasing the transmission power of the transmitter 52 (Tx) of the wireless transmission device 57 (S13), and then the process proceeds to S16. When the received signal level RSL is equal to the ATPC threshold, the transmission power controller 66 (Tx PWR
[0107] CNT) generates a signal (TP1_73) for maintaining the level of the transmission power of the transmitter 52 (Tx) of the wireless transmission device 57 (S14), and then the process proceeds to S16. When the received signal level RSL is less than the ATPC threshold, the transmission power controller 66 (Tx PWR CNT) generates a signal (TP1_73) for increasing the transmission power of the transmitter 52 (Tx) of the wireless transmission device 57 (S15), and then the process proceeds to S16.
[0108] Next, after the modulator 61 (MOD) of the wireless transmission device 67 incorporates the signal (TP1_73) generated in S13, S14, or S15 into the signal (T_BB_CH1′_61), the transmitter 62 (Tx) transmits the signal (T_RF_CH1′_65) to the opposing wireless transmission device 57 (S16).
[0109] Next, in the wireless transmission device 57 that has received the signal from the opposing wireless transmission device 67, the demodulator 54 (DEM) extracts the signal (TP1_73) which is incorporated in the signal (T_BB_CH1′_ 61) as the signal (RP1_75) (S17). Subsequently, the transmission power controller 56 (Tx PWR CTL) of the wireless transmission device 57 determines a provisional level (Tx Power tmp) of the transmission power of the transmitter 52 (Tx) based on the signal (RP1_75) from the demodulator 54 (DEM) (S18).
[0110] Subsequently, the transmission power controller 56 (Tx PWR CTL) of the wireless transmission device 57 compares the provisional level (Tx Power tmp) of the transmission power of the transmitter 52 (Tx) with Max Power of ATPC (S19). Here, when the provisional level (Tx Power tmp) of the transmission power of the transmitter 52 (Tx) is not equal to the Max Power of ATPC (No in S19), the signal (TP1_77) is set to the provisional level (Tx Power tmp) (S20), and then the process proceeds to S22. Here, the state in which the provisional level (Tx Power tmp) of the transmission power of the transmitter 52 (Tx) is not equal to the Max Power of ATPC is a state in which the transmission power of channel (CH2) can be increased independently without considering the transmission power of another channel (CH1) when viewed from CH2.
[0111] When the provisional level (Tx Power tmp) of the transmission power of the transmitter 52 (Tx) is equal to the Max Power of ATPC (Yes in S19), the transmission power controller 56 (Tx PWR CTL) calculates a signal (TP1_77) based on the transmission power (TP2_78) of CH2 (S21), and then the process proceeds to S22.
[0112] Here, the state in which the provisional level (Tx Power tmp) of the transmission power of the transmitter 52 (Tx) is equal to Max Power of ATPC is a state in which the provisional level (Tx Power tmp) of the transmission power for CH2 reaches the upper limit of the transmission power, and the transmission power of CH2 cannot be increased alone. Therefore, when Yes in S19, the signal (TP1_77) is calculated based on the transmission power (TP2_78) of CH1, and then the process proceeds to S22.
[0113] Next, the transmitter 52 (Tx) changes the level of the transmission power or maintains the level of the transmission power in response to the signal (TP1_77) from the transmission power controller 56 (TPx PWR CTL), and transmits the signal (T_RF_CH1_55) of the wireless transmission device 57 of its own station to the opposing wireless transmission device 67 (S22). A series of steps of controlling the transmission power is performed regularly or irregularly as necessary. When it is necessary to control the transmission power, after S22, the process returns to S11, and steps S11 to S22 may be performed again.
[0114] In this manner, the received signal level RSL of the signal (T_RF_CH1_55) received from the opposing wireless transmission device 57 for CH1 is compared with the ATPC threshold, and the control signal for controlling the transmission power of the transmitter 52 of the opposing wireless transmission device 57 is generated on the basis of the comparison result. The transmission power of the transmitter 52 (Tx) of the wireless transmission device 57 is controlled on the basis of the control signal instructing Down/Hold/Up (Down, Hold or Up).
[0115] At this time, when the control signal is Up and the transmission power of the transmitter 52 (Tx) is Max Power of ATPC (Yes in S19), the transmission power level of CH2 in the transmitter 52 (Tx) is checked to determine whether it is possible to further increase Max Power of ATPC by +α [dB].
Advantageous Effects of the Example Embodiment
[0116] In the wireless transmission device and the control method of the wireless transmission device of the present example embodiment, in the case of a system configuration in which one PA (such as the power amplifier 158) is shared by a plurality of CHs, one PA (such as the power amplifier 158) can be covered without using a plurality of CHs, and thus, power consumption of the system can be reduced.
[0117] When ATPC is performed in a system configuration in which one PA (such as the power amplifier 158) is shared by a plurality of CHs, the input level of each CH can be optimized with respect to the input level condition of PA by performing transmission power control in cooperation with the plurality of CHs. For example, in the transmission power control of the present example embodiment, it is possible to further increase the transmission power of the own CH by +α [dB] than the Max Power of ATPC by giving the own CH a margin of backoff caused by a decrease in the level of another CH among the plurality of CHs. The margin of the backoff caused by the decrease in the level of another CH is an example of a reserve power up to a maximum value of output power of the another CH. As a result, in a system configuration in which a plurality of CHs share one PA (such as the power amplifier 158), the performance of the PA can be maximized. As a result, in the wireless transmission device of the present example embodiment and the wireless transmission system to which the control method thereof is applied, it is possible to improve the reception characteristics of the entire system.
Second Example Embodiment
[0118] Next, a wireless transmission device and a control method thereof according to a second example embodiment of the present invention will be described. In the first example embodiment described above, the case where the transmission power is controlled in the intermediate frequency (IF) frequency band has been described as an example, but the present invention is not limited to the control of the transmission power in the IF frequency band. In the second example embodiment, transmission power is controlled in a base band (BB) frequency band.
[0119]
[0120] The present example embodiment relates to a microwave digital wireless communication system that transmits and receives a plurality of radio channels by one antenna, similarly to the first example embodiment described above. In the present example embodiment, as illustrated in
[0121] The wireless transmission device of
[0122] Further, in the wireless transmission device of the present example embodiment, the modulator 51 (MOD) is configured as illustrated in
[0123] The modulator 51 (MOD) in
[0124] The waveform shaping filters 602 and 603 shape waveforms of input signals (BB_CH1_1, BB_CH2_2) in the baseband to be input. The gain controllers 604 and 605 perform level control of transmission power according to an input control signal (CH1_Gain_614 in the gain controller 604 and CH2_Gain_615 in the gain controller 605). The D/A converters 606 and 607 convert a digital signal into an analog signal. The low pass filters 608 and 609 pass only a signal in a desired low frequency band and cut signals in other frequency bands. The mixers 610 and 611 convert a signal (BB_CH1_608, BB_CH2_609) from the BB band to the IF band. The BPFs 612 and 613 pass only a signal in a desired frequency band. The adder 614 adds the IF signals (IF_CH1_612, IF_CH2_613) associated to the respective channels and outputs the result as an IF signal (IF_CH_53).
[0125] In the present example embodiment, similarly to the first example embodiment described above, the receiver (Rx) of the wireless transmission device detects the received signal level RSL of the signal received from the opposing wireless transmission device for CH1, and compares the received signal level RSL with the ATPC threshold. A control signal for controlling transmission power of the opposing wireless transmission device is generated according to the comparison result. Similarly to the first example embodiment, this control signal is a control signal instructing any of Down/Hold/Up (Down, Hold or Up). The transmission power of the opposing wireless transmission device is controlled on the basis of the control signal. In the present example embodiment, the control signal is supplied to the modulator 51 (MOD) in
[0126] In a case where the transmission power of the opposing wireless transmission device for CH1 is controlled according to the above comparison result, the transmission power level of CH2 in the transmitter 52 (Tx) is also checked in the present example embodiment, and it is determined whether the transmission power level can be further increased by +α [dB] than the ATPC Max Power.
Advantageous Effects of the Example Embodiment
[0127] In the wireless transmission device and the control method of the wireless transmission device of the present example embodiment, similarly to the first example embodiment, since one PA (such as the power amplifier 158) can be used without using a plurality of CHs, the power consumption of the system can be reduced.
[0128] Further, similarly to the first example embodiment, when ATPC is performed in a system configuration in which one PA (such as the power amplifier 158) is shared by a plurality of CHs, the input level of each CH can be optimized with respect to the input level condition of PA by performing transmission power control in cooperation with the plurality of CHs. Further, similarly to the first example embodiment, in the transmission power control of the present example embodiment, it is possible to further increase the transmission power of the own CH by +α [dB] than the Max Power of ATPC by giving the own CH a margin of backoff caused by a decrease in the level of another CH among the plurality of CHs. The margin of the backoff caused by the decrease in the level of another CH is an example of a reserve power up to a maximum value of output power of the another CH. As a result, in a system configuration in which a plurality of CHs share one PA (such as the power amplifier 158), the performance of the PA can be maximized. As a result, in the wireless transmission device of the present example embodiment and the wireless transmission system to which the control method thereof is applied, it is possible to improve the reception characteristics of the entire system as in the first example embodiment.
[0129] Further, in the present example embodiment, transmission power control can be achieved by controlling the gain controller 604 and the gain controller 605 of the modulator 51 (MOD). As a result, in the present example embodiment, the transmission power of the wireless transmission device can be controlled by controlling the BB band signal.
[0130] Although the preferred example embodiments of the present invention have been described above, the present invention is not limited thereto. For example, in the first example embodiment and the second example embodiment, the control of the transmission power for CH2 among the plurality of channels (CH1, CH2) has been mainly described, but the control of the transmission power for CH1 can be similarly performed. In
[0131] In the first example embodiment and the second example embodiment, the case where the number of the plurality of channels is two (CH1, CH2) has been described as an example, but the number of the plurality of channels to which the present invention is applied may be three or more. In this case, regarding the table illustrated in
[0132] The present invention is applicable to all digital wireless communication systems.
[0133] Some or all of the above example embodiments may be described as the following supplementary notes, but are not limited to the following.
[0134] (Supplementary Note 1) A wireless transmission device that converts input signals of a plurality of channels into signals of high frequency bands having different frequency bands from each other and then transmits the signals from one antenna, the wireless transmission device including at least: [0135] a modulator to which the input signals of the plurality of channels are input; and [0136] a transmitter that includes a power amplifier and transmits a signal output by the modulator from the antenna, in which [0137] when it is necessary to increase output power of a signal associated to one input signal among the input signals of the plurality of channels and transmitted from the antenna, [0138] reserve power up to a maximum value of output power of another input signal among the input signals of the plurality of channels is checked, and [0139] a control signal is provided to the transmitter or the modulator so as to increase output power of a signal associated to the one input signal within a range of the reserve power and transmitted from the antenna.
[0140] (Supplementary Note 2) The wireless transmission device according to Supplementary Note 1, in which
[0141] a signal transmitted from the antenna is received, and the control signal associated to a comparison result between a received signal level of the received signal and a threshold is provided to the transmitter or the modulator.
[0142] (Supplementary Note 3) The wireless transmission device according to Supplementary Note 1 or 2, in which
[0143] the control signal is a signal associated to one of the input signals of the plurality of channels, and performs control to increase, decrease, or maintain output power of a signal transmitted from the antenna.
[0144] (Supplementary Note 4) The wireless transmission device according to any one of Supplementary Notes 1 to 3, in which [0145] the input signals of the plurality of channels are intermediate frequency (IF) signals, and [0146] the control signal is provided to the transmitter.
[0147] (Supplementary Note 5) The wireless transmission device according to any one of Supplementary Notes 1 to 3, in which [0148] the input signals of the plurality of channels are base band (BB) signals, and [0149] the control signal is provided to the modulator.
[0150] (Supplementary Note 6) A wireless transmission system including: [0151] a wireless transmission device according to any one of Supplementary Notes 1 to 5; and [0152] another wireless transmission device that receives a signal transmitted from the wireless transmission device and outputs the control signal.
[0153] (Supplementary Note 7) A control method of a wireless transmission device that converts input signals of a plurality of channels into signals of high frequency bands having different frequency bands from each other and then transmits the signals from one antenna, in which [0154] the wireless transmission device includes at least: [0155] a modulator to which the input signals of the channels are input; and [0156] a transmitter that includes a power amplifier and transmits a signal output by the modulator from the antenna, and [0157] when it is necessary to increase output power of a signal associated to one input signal among the input signals of the plurality of channels and transmitted from the antenna, [0158] reserve power up to a maximum value of output power of another input signal among the input signals of the plurality of channels is checked, and [0159] the transmitter or the modulator is controlled so as to increase output power of a signal associated to the one input signal within a range of the reserve power and transmitted from the antenna.
[0160] (Supplementary Note 8) The control method of a wireless transmission device according to Supplementary Note 7, in which
[0161] a signal transmitted from the antenna is received, and the control signal associated to a comparison result between a received signal level of the received signal and a threshold is provided to the transmitter or the modulator.
[0162] (Supplementary Note 9) The control method of a wireless transmission device according to Supplementary Note 7 or 8, in which
[0163] the control signal is a signal associated to one of the input signals of the plurality of channels, and performs control to increase, decrease, or maintain output power of a signal transmitted from the antenna.
[0164] (Supplementary Note 10) The control method of a wireless transmission device according to any one of Supplementary Notes 7 to 9, in which [0165] the input signals of the plurality of channels are intermediate frequency (IF) signals, and [0166] the control signal is provided to the transmitter.
[0167] (Supplementary Note 11) The control method of a wireless transmission device according to any one of Supplementary Notes 7 to 9, wherein [0168] the input signals of the plurality of channels are base band (BB) signals, and [0169] the control signal is provided to the modulator.
[0170] Further, it is noted that the inventor’s intent is to retain all equivalents of the claimed invention even if the claims are amended during prosecution.