WO2007100331A1 - Systeme et procede d'amplification rf amelioree - Google Patents

Systeme et procede d'amplification rf amelioree Download PDF

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Publication number
WO2007100331A1
WO2007100331A1 PCT/US2006/007561 US2006007561W WO2007100331A1 WO 2007100331 A1 WO2007100331 A1 WO 2007100331A1 US 2006007561 W US2006007561 W US 2006007561W WO 2007100331 A1 WO2007100331 A1 WO 2007100331A1
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WO
WIPO (PCT)
Prior art keywords
signal
control signal
audio
control
signals
Prior art date
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Ceased
Application number
PCT/US2006/007561
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English (en)
Inventor
Michael Steele
David Franklin
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Audiological Engineering Corp
Original Assignee
Audiological Engineering Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Audiological Engineering Corp filed Critical Audiological Engineering Corp
Priority to PCT/US2006/007561 priority Critical patent/WO2007100331A1/fr
Publication of WO2007100331A1 publication Critical patent/WO2007100331A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/42Arrangements for resource management
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/38Arrangements for distribution where lower stations, e.g. receivers, interact with the broadcast
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/28Arrangements for simultaneous broadcast of plural pieces of information
    • H04H20/33Arrangements for simultaneous broadcast of plural pieces of information by plural channels
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/53Arrangements specially adapted for specific applications, e.g. for traffic information or for mobile receivers
    • H04H20/61Arrangements specially adapted for specific applications, e.g. for traffic information or for mobile receivers for local area broadcast, e.g. instore broadcast
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H60/00Arrangements for broadcast applications with a direct linking to broadcast information or broadcast space-time; Broadcast-related systems
    • H04H60/09Arrangements for device control with a direct linkage to broadcast information or to broadcast space-time; Arrangements for control of broadcast-related services
    • H04H60/14Arrangements for conditional access to broadcast information or to broadcast-related services
    • H04H60/15Arrangements for conditional access to broadcast information or to broadcast-related services on receiving information

Definitions

  • the present invention pertains to improved RF amplification systems and methods for use in classrooms and other venues.
  • the invention is described in the context of an improvement of the system and methods disclosed in our US Patent No. 6,397,037, issued May 28, 2002, the entire disclosure from which is incorporated herein by reference.
  • US Patent No. 6,397,037 (Franklin et al) describes methods and apparati for transmitting audio signals one way and control signals of various types, two ways, over an RF channel (or channels) in such a manner as to reduce the chance of interfering with or being interfered by, other RF transmissions, and for enabling the use of a multiplicity of such systems in close proximity without having to pre-select appropriate transmission frequencies.
  • the Franklin et al patent describes methods and apparati that enable multiple audio transmissions via RF means in close proximity without their interfering with one another and with no manual adjustments to equipment required.
  • the preferred embodiment of the present invention utilizes spread- spectrum technology, either of the direct sequence type, or frequency hopping or a combination of the two.
  • One embodiment of the invention focuses on the use of Bluetooth technology utilizing the synchronous mode (SCO). It is desirable to use wide band audio, of 6 KHz or greater, preferably greater, which requires modifications to the usual realization of the SCO methods.
  • SCO synchronous mode
  • Embodiments of the present invention using the various realization methods and approaches, apply to use in classrooms and other venues such as: wireless public address systems; wireless amplification systems in halls and churches; wireless systems used for transmitting voices and music and other sounds from radios and/or televisions to remote loudspeakers, recorded sounds such as music and speech from devices such as i-pods and other recording objects, both analog or digital, to name a few. It will be evident to those familiar with the range of wireless applications that there are other applications for the principles described herein.
  • time delay As is it is often referred to, between the visual image and the transmitted sound becomes important. More particularly, consider the situation where an individual, or group of individuals, are watching a talker while listening to her voice. As is generally known by those engaged in the study of speech perception, 1 time delays between the perception of the spoken sounds, on the one hand, and the motion of the talker's mouth, on the other hand, that exceed about 20 milliseconds result in disconcerting, confusing sensory perceptions. As a rough guideline, it is generally desirable that such time delays be kept below approximately 15 milliseconds.
  • nRF24Z1 a new digital chip
  • ACL asynchronous methods
  • SCO synchronous methods
  • the preferred embodiment utilizes either the modified SCO approach, or the newer ACL enabled by chips such as the nRF24Z1.
  • the choice would be the unmodified SCO synchronous method.
  • the major difference between the two modes is that the ACL type allows extra error corrections for data errors by allowing multiple retransmissions prior to actually delivering the data load, in the present case, audio materials
  • the methods of signal processing primarily described herein namely, the two types of spread spectrum transmissions, direct sequence and frequency hopping, or combinations of the two, one can also address the main advantage offered by the Franklin et al patent (that is, unique presentation to a given base station, or a unique selection of multiple base stations) in other ways.
  • One example is the use of multiple channels with appended access codes, wherein any interference or loss of clear signal is interpreted by the system to automatically switch to another clear channel.
  • This operation may be automatic or manual, but for the embodiment described herein we are mainly concerned with the automatic type requiring no operator intervention.
  • a related method employs a plurality of channels operating simultaneously, wherein the processing system is arranged to accept and forward the data only from the channel or channels meeting some criteria of clarity.
  • a key, or keys must be inserted as a portion of the desired message such that other messages on the same carrier frequency are rejected, thus obtaining the desired link to the exclusion of other unwanted competing messages.
  • the keys may be transmitted one way with an appropriate response transmitted the other way, or the keys may be preprogrammed into both the receiver and the transmitter prior to use.
  • either use shall constitute a one way audio signal and a two way control signal.
  • the main goal of the invention is to obtain a clear unique signal path with little or no interference from other unwanted transmitters or noise sources.
  • These and other techniques described herein may be either analog or digital, but in most case the preferred method is digital.
  • Bluetooth and many other spread spectrum technologies use specific assigned frequency bands, depending on the country of use, in the 2.4 GHz band, the 900 MHz band, the 5.8 OHz band and the new Ultra Wide Band (UWB). While for most applications these bands would be used for the present invention, other spectral bands do lend themselves to the same methods. Therefore, all ranges of spectral uses are considered as applicable for the present invention, including but not limited to IR frequencies and other possible electromagnetic frequency bands.
  • control signals or keys that occur during hang-up time of the transmitter, or that are pre-programmed into both the receiver and the transmitter thus making them a unique pair shall be construed as a two-way control signal so far as the principles of the invention are concerned.
  • a synchronous channel contains guaranteed time slots and the end user uses them in sequence or order.
  • An asynchronous channel contains no guaranteed time slots; that is, the end user receives data and assembles the message. If the end user uses error correction codes, then the order of the data can be varied or some of the data can be deleted and replaced with corrected data, thereby producing a delay referred to above as latency.
  • the asynchronous channel is always running (communicating), but in the case of a synchronous link, the link is established and error correction is not used.
  • the transmission means includes a response on the part of the receiving equipment by sending a message back to the transmitter in question.
  • the channel is described as asynchronous (ACL).
  • ACL asynchronous
  • synchronous realizations of the present invention will have no two way control signal occurring at the start of any link connection. Instead, the link is established when the receiver, sitting and waiting, receives a proper RF signal containing the correct key or instruction set which has been preprogrammed one way or another as described above. Using this key, the receiver will synchronize its RF system to "hop" according to the predetermined hop sequence, unique to that receiver/transmitter pair, and thus both the RF hop sequence and the further data keys contained in the signal will be matched for the duration of the message set. For present purposes this above sequence shall still be construed as one way audio transmission, and a two way control signal transmission, as stated above.
  • the sequence of the transmissions will contain both embedded keys and responding handshakes, although one can configure the method so that the responding transmissions are deleted after the initial contact. In this event, the latency will be decreased and the error correction methods will likewise be decreased.
  • VLM Voice Link Module
  • Figure 1 is a diagrammatic illustration of the invention in the context of a classroom amplification context.
  • FIG. 2 is a block diagram of a typical narrow band SCO system using Bluetooth
  • FIG. 3 is a block diagram of a wide bandwidth Bluetooth system using combined SCO channels
  • Figure 4 is a functional block diagram of a continuously variable slope demodulator
  • Fig. 1 is a diagrammatic illustration of the invention using a Bluetooth Radio Module and support elements as shown.
  • Primary components in this embodiment include a microcontroller unit (114) (or alternatively a digital signal processor), a Bluetooth radio module (107) and an associated RF antenna (109). These components function in a conventional manner to assemble digital audio data into packets for serial transmission via the RF communication link.
  • the microcontroller unit (114) is also responsible for transmitting and receiving digital audio in pulse-code-modulation (PCM) format (or alternative formats) between an analog to digital converter and digital to analog converter which, together, reside in the CODEC block (120).
  • PCM pulse-code-modulation
  • the user interface for this system includes a keypad or switch bank (105) and a liquid crystal display (117) which may be reduced to a set of light emitting diodes (LEDs) depending on the complexity of the desired display information.
  • Microphone/preamp (103) is a source of audio signals and can be replaced by an alternative audio source such as the audio channel of a television or other audio source.
  • Bluetooth supports two types of logical connections: Asynchronous Connectionless Link (ACL); and Synchronous Connection Oriented Link (SCO).
  • ACL Asynchronous Connectionless Link
  • SCO Synchronous Connection Oriented Link
  • the ACL is often referred to as a packet-switched connection because no end-to- end connection is established between transmitting and receiving devices. Instead, data packets carry address and control information allowing the data to arrive and be received at its proper destination.
  • ACL links are typically used for "bursty" or time insensitive data such as that from a keyboard. While it is possible to transmit audio over an ACL connection, associated delays can be disruptive in any Real Time situation.
  • the SCO synchronous link is the preferred method. In order to accommodate this approach, it is necessary to assure that the time delays in the audio signal did not exceed about 15 milliseconds.
  • An SCO link is a logical end-to-end connection often referred to as a circuit-switched connection.
  • the SCO link is a dedicated pathway, or pipe, that must be established prior to data transmission similar to those found on the Public Switched Telephone Network (PSTN).
  • PSTN Public Switched Telephone Network
  • SCO data packets carry no address or control information because establishment of the SCO link explicitly determines which devices are involved in the connection. Establishment of the specific link is as described above in the Summary section.
  • SCO link Data transmitted via an SCO link is transmitted in periodic time slots and the only overhead associated with SCO data packets is error correction data which can be optionally removed depending on the application.
  • An SCO link does not provide a retransmission mechanism because of the delays involved, and it is the responsibility of the error correction scheme, if used, to detect and correct errors in the data stream.
  • An SCO link is an extremely efficient transmission channel due to the lack of overhead and guaranteed time of arrival for data packets. For these reasons the SCO link is the preferred method for transmitting time sensitive data such as real-time audio using Bluetooth.
  • Bluetooth specifications permit as many as three simultaneous SCO links to be established between devices. As part of the link establishment procedure the devices must agree upon the type of data packets that will be transferred and time slots that will be reserved for the packets. Bluetooth time slots are 625 ⁇ sec which correspond to the FHSS hop rate of 1600 hops/sec.
  • the time division duplexing (TDD) scheme has been designed so that single slot packets are each transmitted via a different RF frequency.
  • the Base band component is responsible for low level transfer of digital data to and from the radio, while the Host Controller Interface provides a connection between a host processor and the Base band processor.
  • Base band functionality is implemented in hardware; the Host Controller Interface (HCI) it is typically implemented in software or firmware
  • LM Link Manager
  • a typical Bluetooth headset comprises a microphone, a headphone amplifier, A/D and D/A (CODEC) converters, a Bluetooth radio module (single or multi-chip), and an inexpensive microcontroller.
  • CODEC A/D and D/A converters
  • Bluetooth radio module single or multi-chip
  • microcontroller an inexpensive microcontroller. Referring specifically to Fig. 2, the most basic implementation using Bluetooth, utilizes a microcontroller
  • This software is responsible for configuring the Bluetooth radio (129) over the Hardware Controller Interface (HCI), ' typically by way of a simple serial interface known as a universal asynchronous receiver transmitter (134), or UART.
  • Digital audio is input/output directly to/from the Bluetooth radio via the pulse-code- modulation (PCM) interface (131) found in essentially all voice enabled Bluetooth chipsets or modules.
  • PCM pulse-code- modulation
  • the microphone (126), loudspeaker or headphone driver (124), and CODEC (127) are necessary although for half-duplex, or one way audio communication mode, only a subset of these components is necessary depending on whether the device is acting as an audio receiver or transmitter.
  • This device will establish a single SCO link with a Bluetooth enabled cellular or mobile telephone and support 64Kbits/sec speech in both directions (full duplex).
  • the speech signal is subjected to a sequence of operations prior to being wirelessly transmitted.
  • the microphone signal is first quantized by an analog to digital (A/D) converter.
  • A/D converters for this application typically sample the speech signal at an 8 Khz rate, and amplitude resolution for the A/D is usually 16 bits, but any resolution between 12 and 16 bits will yield speech of reasonable quality.
  • the data rate for 16 bit samples is 128 Kbits/sec (16 bits/sample @ 8K samples/sec). Before transmission is possible the data rate must be reduced to the capacity of a single SCO link (64 Kbits/sec).
  • Bluetooth provides two methods for performing the data rate reduction; Log PCM and Continuous Variable Slope Delta (CVSD) modulation. Since CVSD is the superior method, it is that which is preferred for the present invention, and only that method is described in detail below.
  • the CVSD algorithm converts samples into a serial bit stream by using a single bit A/D converter and a variable step size predictor in a feedback loop. Similar to other types of delta modulators, the feedback loop is used to estimate the prediction error of the current output sample and to reduce that error in the next output.
  • a key feature of the CVSD modulator is that it uses a variable step size in the predictor and eliminates two specific drawbacks of fixed step size delta modulators; namely, slope overload distortion, and granular noise. Slope overload distortion occurs when the slope of the signal is too large for the modulator's feedback network to track, and granular noise is the result of the modulator oscillating about a signal with a small slope. It is the variable nature of the step size that gives CVSD its name.
  • a Bluetooth CVSD encoder first interpolates the 8K samples/sec speech data by a factor of eight to obtain a 64K samples/sec linear PCM data stream. This data is then passed to the CVSD encoder resulting in a data stream of 64 Kbits/sec that is transmitted over a single SCO link.
  • An important requirement of the CVSD encoders used by Bluetooth is that the bandwidth of the digitized speech signal must be strictly limited to below 4 KHz.
  • the PCM (pulse code modulation) block in the Bluetooth radio module is a hardware interface designed as a glueless connection to standard speech with bandwidths between 8 KHz and 12 KHz.
  • Fig. 3 is a block diagram of the system of the present invention. Encoding of the speech through the PCM interface is controlled by the host processor. The method described below to obtain wideband transmissions makes changes to the architecture of Fig. 2 and relies on an advanced digital signal processor (DSP) for performing CVSD encoding at rates higher than that for the headset application.
  • DSP digital signal processor
  • the prime requirement is to implement more than a single simultaneous SCO link between the Master (microphone/transmitter) and the Slave (stationary receiver/amplifier).
  • the typical headset functionality indicated in Fig. 2 requires changes in both hardware and software as described below.
  • the microcontroller unit has been replaced by a more sophisticated digital signal processor (140) that performs the same software functions (142, 147) as mentioned in previous sections, along with a set of additional tasks that include PCM (143) data stream management and encoding (decoding) software that support the higher bandwidth.
  • PCM PCM
  • the specialized encoding (CVSD and/or alternative) and decoding software components (145) are responsible for converting the PCM data into a format suitable for transmission over the RF interface.
  • external components still comprise a CODEC (127), microphone and preamp (126), loudspeaker or headphone driver (124), and a Bluetooth radio (129) including an HCI interface implemented over a hardware UART (134).
  • audio signal encoding and decoding is performed by a DSP that replaces the microprocessor of FIg. 1 as the host controller. Additionally, the CODEC of Fig. 1 no longer is attached to the Bluetooth radio PCM interface. Instead it connects to the DSP PCM interface so that the DSP now resides between the PCM speech data and the Bluetooth radio.
  • the Bluetooth radio module must support a minimum of two, and preferably three, simultaneous SCO links yielding an aggregate data rate of between 128 Kbits/sec (Kbps) and 192 Kbps. These rates provide transmissions of high quality audio.
  • the universal asynchronous receiver transmitter now serves as both the HCI and serial audio data interface between the DSP and the Bluetooth radio. Because the UART now handles bi-directional HCI messages and bi-directional audio data, it must be capable of significantly higher transmission rates than those found in the headset application.
  • the application software includes the user interface and low level communications to the HCI, while the HCI serves as a gateway and is responsible for issuing commands to, and responding to, events from the Bluetooth radio.
  • HCI Home Controller Interface
  • device drivers must also be included to handle HCI message traffic through the UART hardware.
  • the broadband system has essentially the same functional characteristics as the headset system except that the DSP is now responsible for the entire audio signal processing between the Bluetooth module PCM and RF interfaces.
  • the signal processing software must now include high bit rate CVSD encoders and decoders and packet sequencers that prepare encoded audio data for transmission between the HCI and the Bluetooth radio.
  • a PCM device driver is written to handle serial audio data between the CODEC and the signal processing software.
  • the Continuously Variable Slope Delta modulator shown uses basic discrete processing components for encoding PCM audio (16 bit amplitudes) at some sample rate, F 3 , to a serial data stream (1 bit amplitude) at a much higher sample rate (N* F 8 ).
  • the encoder comprises a difference block (151), a one bit analog to digital converter (153) which determines the sign of the current "error" output from the difference block, a shift register (170), two discrete integrators (155, 167), and two limit blocks that output constant values depending on past results (159, 163).
  • the Level Shift (157) converts the bipolar (+/- 1) signal output from the A/D converter to a unipolar value (0/1) used in the following multiplier.
  • a particularly useful application for the technology of the present invention is in classroom amplification systems.
  • these systems depend on some kind of transmitter and microphone worn by or otherwise associated with the instructor, a receiver/audio-amplifier installed in the classroom, and a number of loudspeakers arrayed about the classroom.
  • These systems amplify the instructor's voice throughout the room so that all students can hear without strain, even if they have mild, untreated hearing loss.
  • the problem of signal interference in classroom amplification systems limited deployment of such systems.
  • the enhancement provided by the improvement described herein is expected to be particularly beneficial to classroom amplification systems.
  • one or more transmitter(s) can be paired with a single receiver, or one or more receiver(s) can be paired with a single transmitter.
  • an RF type amplification system can employ a variety of interference reduction/avoidance techniques which use either embedded keys, as keys are defined above, or handshake protocols, in the sense of handshakes as defined above, to attain the unique connection of a pair, or pairs, of transmitter and receivers such that they, in effect, transmit audio one way and control signals two ways, and fall within the claims and spirit of this invention.

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  • Engineering & Computer Science (AREA)
  • Signal Processing (AREA)
  • Business, Economics & Management (AREA)
  • General Business, Economics & Management (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

Selon la présente invention, on utilise une technologie à large spectre, soit séquence directe, soit sauts de fréquence, soit une combinaison des deux, afin d'émettre des signaux audio de manière unidirectionnelle et de contrôler des signaux de manière bidirectionnelle sur un ou plusieurs canaux RF dans le but de réduire les interférences avec/à partir d'autres émissions RF et de permettre l'utilisation de plusieurs systèmes de ce type à forte proximité l'un de l'autre sans exiger de présélection des fréquences d'émission. En variante, on peut utiliser plusieurs canaux avec des codes d'accès ajoutés, l'interférence ou perte de clarté du signal résultant en un basculement automatique sur un autre canal. Les signaux de contrôle accompagnent le signal audio émis à un certain moment dans l'intervalle d'émission, ou avant le début de l'intervalle d'émission, et constituent un message de contrôle codé permettant une connexion unique. Dans certains cas, les clés d'encodage peuvent n'apparaître qu'au début du message souhaité, tandis que dans d'autres cas les signaux de contrôle bidirectionnels peuvent continuer pendant l'intervalle de la liaison du message.
PCT/US2006/007561 2006-03-03 2006-03-03 Systeme et procede d'amplification rf amelioree Ceased WO2007100331A1 (fr)

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PCT/US2006/007561 WO2007100331A1 (fr) 2006-03-03 2006-03-03 Systeme et procede d'amplification rf amelioree

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PCT/US2006/007561 WO2007100331A1 (fr) 2006-03-03 2006-03-03 Systeme et procede d'amplification rf amelioree

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Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6397037B1 (en) * 1997-06-02 2002-05-28 Audiological Engineering Corporation Method and apparatus for improving classroom amplification systems and other RF-type amplification systems

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6397037B1 (en) * 1997-06-02 2002-05-28 Audiological Engineering Corporation Method and apparatus for improving classroom amplification systems and other RF-type amplification systems

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