Serial Interfaces Selection Guide All of ICS's Serial Interfaces provide GPIB like IEEE-488.2 functionality over an RS-232 or RS-485 Serial link and are serial devices. Click here for our Serial to GPIB Controller.
• CcTalk implementation on Suzo Flow Hopper. Serial Communication: Hopper responsibilities. Standard parallel interface or ccTalk serial interface. Ardac Elite The Ardac Elite is without doubt one of the most advanced products Crane produces at Money Controls.
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It has established an excellent reputation, particularly in the demanding environment of casino gaming, where any breakdown or poor acceptance rates can be very costly. The Ardac Elite has state of the art imaging technology to ensure the highest standards of validation. At the same time, it has very high acceptance rates, and will accept ‘street money’ in virtually any state, and inserted at virtually any angle! Ardac Elite is compatible with around 95% of all gaming machines. It is innovative, and yet very easy to use.
Among the innovations you will find on the Ardac Elite is the unique ‘last bill’ technology. Asynchronous Serial Interface If there are any disputes about the last bill entered, simply plug in a PDA via the USB port, and you can check the last ten bills entered.
Furthermore, Ardac Elite is the ideal bill acceptor for server-based gaming.
This article includes a, related reading or, but its sources remain unclear because it lacks. Please help to this article by more precise citations. ( September 2014) () ccTalk (pronounced see-see-talk) is a protocol in widespread use throughout the money transaction and industry. Such as the for coins and banknotes found in a diverse range of automatic payment equipment such as transportation, ticketing, payphones, amusement machines, and retail cash management use ccTalk to talk to the host controller. The ccTalk protocol is one of 2 protocols specified by for use in all AWP machines with serial coin acceptors.
(The other is the Host Intelligent Interface protocol developed by ).: 20 The protocol was developed at a company called Coin Controls (hence coin-controls-talk, later called Money Controls and from 2010 Crane Payment Solutions) on the outskirts of in north-west mainly by Engineer Andrew William Barson. The first release of the protocol was in 1996. The ccTalk protocol is an.: 13 The protocol uses an asynchronous transfer of character frames in a similar manner to RS232. The main difference is that it uses a single data line for half-duplex communication rather than separate transmit and receives lines. It operates at and is ‘multi-drop’ i.e. Peripherals can be connected to a common bus and are logically separated by a device address. Each peripheral on the ccTalk bus must have a unique address.
The original protocol operated at 4800 with subsequent releases standardising on 9600 baud. Low cost bridge chips are now available from a number of manufacturers to allow ccTalk to run over USB at baud rates of at least 1 Mbit/s. CcTalk protocol stacks have been implemented on a range of devices from tiny with 512 of to powerful 32-bit processors.: 12-13 The protocol supports all standard operations for electronic devices such as upgrading of firmware, secure transfer of data and detailed diagnostic information. Advantages of ccTalk include low cost technology, a simple-to-understand packet structure, an easily expandable command interface and no licensing requirements.
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The latter affords the protocol a good deal of popularity in a crowded and highly competitive field similar to open-source software. In 2010, encryption was added to certain commands so that it could be made more resilient against attacks on the bus.
Each peripheral has its own unique DES key. Contents • • • • • An Example ccTalk Message Packet [ ] TX data = 2 0 1 245 8 • 2 = destination address • 0 = zero data bytes • 1 = source address • 245 = command header ‘Request equipment category id’ • 8 = checksum ( 2 + 0 + 1 + 245 + 8 = 256 = 0 mod 256 ) This is a message from address 1 ( the host ) to peripheral address 2 to find out what it is. RX data = 1 13 2 0 67 111 105 110 32 65 99 99 101 112 116 111 114 22 • 1 = destination address • 13 = 13 data bytes • 2 = source address • 0 = reply header • 67114 = ASCII for ‘Coin Acceptor’ • 22 = checksum ( sum of all packet bytes is zero ) The reply from address 2 back to address 1 identifies it as a coin acceptor.