“[0009] The present invention is characterised in that the amplifier is connected to the signal source and power supply by means of a Cat. 5 four pair twisted cable which provides, in respective conductors of the twisted pairs, right channel audio signals from the signal source to the amplifier, left channel audio from the signal source to the amplifier, and DC power from the power supply to the amplifier. [0010] The right channel audio, left channel audio and DC power may be provided in respective twisted pairs. [0011] This system enables decentralisation of amplification, and permits the amplifier to be installed remote from the signal source and close to the speakers, reducing speaker cable loss and increasing total system damping factor. The remote amplifier does not need to be positioned close to a voltage source since it receives its power via the Cat. 5 four pair twisted cable. [0012] The cabling is very simple and easy to install. One Cat. 5 cable connects the source of audio signals, to each room or zone. This cable carries audio signal system power, and if required, data and status. Digital systems can also carry video transmission. More of the cables can be laid in parallel if higher power or bi-amplification is required. … [0016] The remote amplifiers can be integrated circuit amplifiers. As a result of not requiring built-in power supplies they may be compact, and they may be constructed to fit into a standard electrical light switch housing or be incorporated into a speaker box or in-wall or in-ceiling speaker. A suitable example is the Silicon Monolithic Bipolar Linear Integrated Circuit, TA8216H, dual audio power amplifier. … [0021] The remote amplifiers may accept standard line level signals from the audio source components, or speaker outlet of a master amplifier which may be matched to the audio source, or sources, and may be located with them. In other words, the remote amplifiers may be driven by either a low impedance (4 to 16 ohm) speaker level signal, or high impedance (10k ohm) line level signal. … [0024] The output from the remote amplifiers is sufficient to drive a pair of hi-fi speakers, 4 to 16 ohm, at a reasonable sound level for most domestic requirements; typically 90-100dB unweighted. The remote amplifiers do not require fused output protection.”
“At the Priority Date, specialist technical knowledge would have been required to develop a new technical design for a home sound distribution system. This would have included knowledge of loudspeakers, including ‘area coverage’, ‘impedance’, ‘frequency response’, ‘sound quality’, ‘sound pressure levels’, and ‘sensitivity’. In addition, detailed knowledge of the technical performance of speaker cables would have been needed, along with some over-arching system design skill. The skilled person would have needed to be able to design for multiple remote sound reproducing locations, multiple (generally two) channel music signal sources, customer-friendly remote control interfacing, and a central distribution unit to take care of the complex interfacing and logical control of the components. Such a skilled person would also have needed to understand the transmission of sensitive, low power audio signals over long distances in view of possible interference from, for example, electric power cables.”
“That part of acoustics and electronics that deals with the design, construction, and use of equipment for the recording and reproduction of sound to a fairly high standard. Also attrib. or as adj., esp. hi-fi equipment, set, system, equipment for the home designed to reproduce (and sometimes to record) sound to such a standard, consisting often of several distinct units. Also ellipt. for hi-fi equipment, etc.”
“A number of years before the Priority Date, several manufacturers had identified remote-zone amplification as a means of overcoming some of the problems highlighted above.”
“The sound quality advantages of remote zone amplification were known but up to the Priority Date remained expensive and inconvenient to implement.”
“For systems with remote zone-located amplification, this gave rise to difficulties as to where this power would be supplied from. One option was to arrange local mains power to supply the amplifiers. An alternative approach was to use the multi-room system cable (i.e. the same one that transmitted the signals) to provide the amplifier power at a safe lower level voltage.”
“Q. It is right, is it not, that the options that you identify are options that would have been available to the skilled person in 1997? A. Yes, I think we are talking MRS at this stage for zone remote power. Q. But even more generally, those would have been options that would have been in the skilled person's toolkit. A. Yes. It is certainly possible to design one, yes.”
“An example of a suitable commercial stereo power amplifier is given (which is a single integrated circuit chip) (see para [0063] of the Patent). This device was widely used for car stereo systems and moderate power home audio products, such as combination ‘Hi Fi’ sets. Data sheets, easily accessed from chip manufacturers and resellers, show a power output of 2x 10W for an 8 ohm load and 2x 15 W for a lower impedance 4 ohm load.” “… the Patent clearly provides that the skilled person may readily use a typical, widely available and well known IC chip amplifier, familiar to the audio industry as a low power, relatively low voltage, two channel device used widely in compact domestic audio units and also built into car stereo head units on a grand scale. With a 10W to 15W power output for 8 to 4 Ohm loudspeakers, it is conveniently capable of operating from a single DC rail supply up of to 24 volts. … These IC amplifiers were intended for lower power, good performance applications and their manufacturers provided comprehensive engineering guidance on their trouble free application.” “For mass production, the IC amplifier with its fewer parts has its attractions but some care was needed with its selection since some were of higher distortion, more intended for ‘boom boxes’ than high fidelity. Cheaper IC amplifiers were low on power and quality. They did not have good noise levels and experienced distortion that was so high, that for some amplifiers one could get only 1/3 to 1/2 of the claimed power on bench testing. There were a few, more expensive, IC amplifiers that came with more precise specifications and could deliver hi-fi quality at 10-15W; and even higher powers were available right up to 100W. The example given in the Patent was one of these off-the-shelf IC amplifiers, and is merely an example of a compact amplifier with a suitable audio performance, well specified for power, noise, frequency response and distortion.”
“CAT-5 was a useful cable for carrying the audio signals for a multi room install as such cables need to carry the audio signal (and data signals for the remote commands and control) over long distances e.g. 100m or more.”
“The QED Systemline distributed sound system (pre-1997) was an approach to remote zone amplification aimed to reduce cost. One part of this solution was to provide lower cost custom amplifiers. There was also a considerable simplification of the control system and versatility when compared with Linn Knekt (e.g. fewer sources and zones could be catered for, and more limited intelligence in the user interface). This reduced cost objective was not fully met because the remote amplifiers were at the time 30 + 30W and required the provision of local mains supply. The system also used a proprietary QED cable.”
“… the Systemline product produced by QED … was considered good value but it did not produce particularly good quality sound.”
“(1) (a) Identify the notional ‘person skilled in the art’; (b) Identify the relevant common general knowledge of that person; (2) Identify the inventive concept of the claim in question or if that cannot readily be done, construe it; (3) Identify what, if any, differences exist between the matter cited as forming part of the ‘state of the art’ and the inventive concept of the claim or the claim as construed; (4) Viewed without any knowledge of the alleged invention as claimed, do those differences constitute steps which would have been obvious to the person skilled in the art or do they require any degree of invention?” (b) Identify the relevant common general knowledge of that person; (2) Identify the inventive concept of the claim in question or if that cannot readily be done, construe it; (3) Identify what, if any, differences exist between the matter cited as forming part of the ‘state of the art’ and the inventive concept of the claim or the claim as construed; (4) Viewed without any knowledge of the alleged invention as claimed, do those differences constitute steps which would have been obvious to the person skilled in the art or do they require any degree of invention?”
"The question of obviousness must be considered on the facts of each case. The court must consider the weight to be attached to any particular factor in the light of all the relevant circumstances. These may include such matters as the motive to find a solution to the problem the patent addresses, the number and extent of the possible avenues of research, the effort involved in pursuing them and the expectation of success."
“I confess that I view with suspicion arguments to the effect that a new combination, bringing with it new and important consequences in the shape of practical machines, is not an invention, because, when it has once been established, it is easy to show how it might be arrived at by starting from something known, and taking a series of apparently easy steps. This ex post facto analysis of invention is unfair to the inventors, and in my opinion it is not countenanced by English Patent Law.”
“I … cannot understand how it can be said to be inventive to use a standard kind of amplifier intended to be used for home music systems operating at fairly low voltage and using a standard multi-core cable widely available for home installation at the time (Cat. 5) for its power and signals.”
“Audio over Cat5 Using UTP (unscreened) Cat5 cable, rather than conventional speaker cables, does present some serious technical challenges, and calls for some thinking outside the box - literally. Sending audio down Cat5 is relatively easy. By adopting transformer-based balanced line transmission, similar to that used in the pro-audio market, it is possible to transmit audio over long cable lengths with virtually no signal degradation and very high immunity to hum and interference. This approach is in fact a higher-quality solution than conventional speaker cables, but it does require an amplifier to be located in each zone, rather than a central stack. This means that there are other issues to deal with –principally concerning the transmission of power down the Cat5 cable to drive the in-zone amplifier. Power over Cat5 Conventionally, power connected over a Cat5 cable would suffer from a number of problems. Firstly, power would be lost via heat in proportion to the length of cable and the current being drawn by the amplifier. Consequently, the performance of the amplifier would be very different over 1 meter of cable compared to say 50 meters. Over 50 meters, the voltage would drop according to the power drawn by the amplifier, and given that the greatest power is drawn when reproducing bass notes, the voltage rail would drop at the very moment you did not want it to. The end result is not just loss of power, but also dynamic compression. We have overcome this problem by providing the zone amplifier with its own purpose-designed switched mode power supply which uses high-frequency pulse-width modulation as a means of compensating for the variable input voltage and change in current demands. We then pair this with Class D amplifiers which, because of their efficiency, can operate on lower voltage rails for a given output than conventional amplifiers can. Also under quiescent current conditions, these amplifiers draw very little power and therefore generate very little heat – a major plus point. Such an approach provides the very best solution in terms of sound quality, because it efficiently delivers a fully-regulated power supply right next to the amplifier.”