Hxc Dongle Smart Card Driver 34


Hxc Dongle Smart Card Driver 34



 
 
 
 
 
 
 

Hxc Dongle Smart Card Driver 34

10. force to create a pic card holder and hxc dongle smart card (refer to pic32 for reference) from hxc dongle smart card.
when hxc dongle smart card is placed in pic card holder, this function can create a hole for pic card holder and hxc dongle smart card.
this can be convenient in case when you need to hold more than 1 pic card in a pcmcia card holder.

by kudoh tetsuya, on 17-04-2015.

i have not read the whole thread yet but to my limited understanding: linux hangs from time to time if you attach the umt dongle smart card to the raspberry pi. this problem is solved by unplugging and reattaching the dongle, or restarting. in windows the rpi hangs if you plug the dongle in, unplug the dongle, plug the dongle back in, and the rpi boots fine. this is considered a new problem.

i have to admit that the best “hw” tutorials that i had found so far are ones where the programmer is a more or less jack-of-all-trades and master of none. i have found the broad strokes the more encouraging because they mean that somebody else has gone through all the same steps as me and can show you what to do. i also tried to ask my friends and chatted online for advice as well. a combination of all the advice i got together helped me to at least get the driver working for the sd card reader.

i finally remembered that hc053.h from the original source was not what i needed.

the datacard is a credit card (cc) and has no chip, but it contains a cvv code. applications for the datacard are primarily in overseas payments. you can use it for id verification for online purchases, to make purchases via a credit card, and so on. you can also use it as a secure storage space, or to store and pay for assets. the datacard application is the one you will use on the android mobile device. it enables you to use the datacard.

i started by rewriting the entire slave driver to use 16 bits instead of 9. this seemed like a good idea because the address is only 16 bits instead of 32, and the slave can handle a chunk of data in a single transfer. i also had to rewrite the entire mark/space code to use 16 bits as well. this code was originally written as a way to help with reading data from a uart into the spi master. since the slave code is now 16 bits, i decided to just re-use it. this allows for a much cleaner and simpler design.
here is the readme for the master driver. this is what the 8 bit slave used to be based on. note that the 8 bit slave uses the spi master’s clock and data lines to communicate to it. this isn’t as safe as the 16 bit slave because the 8 bit slave doesnt have any initialization code to help it know what to do with incoming data. this is why we need to start the slave code every time it is initialized by the spi master. here is the readme for the 16 bit slave. in this case we only need to initialize the slave once and it can handle the spi master during its initialization phase.
i removed all of the 24 bit slave code. i replaced it with a single 16 bit slave. in this case, the slave now handles all of the spi master initialization tasks as well as handling any data being sent to it. this is just a matter of getting used to 16 bits instead of 24 and then manipulating the data properly. the slave driver also uses a single 16 bit register to handle the entire address space of the spi master. this means that all the commands and features of the spi master can be used in the same way. the slave driver also handles bytes being sent to it. this allows for much cleaner code than the 24 bit slave. for instance the slave can understand the spi masters commands such as spi write, spi read, spi write eeprom. the slave can also understand the spi masters commands such as spi write eeprom, spi write. it also can understand the commands to read/write 4 bits at a time. in the 24 bit slave, the master had to have to have a specific command format. instead, it now supports any number of bytes being sent to it. this means that the slave can read/write 4 bytes at once, or 8 bytes, or 12 bytes. this is much cleaner as well as being more powerful.
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