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Current_value is the index value, 34 is the data, and ADC_DATA is the name of the array. For more dimensions in an ARRAY, more indexes are added, surrounded by square brackets. 4 ADC_DATA[current_value][date,time]; This creates a two-dimensional array with two index values required to access each data value stored in the array. Accessing an array via assembly language becomes a little more complex, as the size of the data type in the array will affect the absolute address of each element. To convert the index value into a physical data memory address, it is necessary to multiply the index by the number of bytes in each element’s data type, and then add in the first address of the array.

One alternative to the fixed-point format that does not require a floating-point format is to simply scale up all the values in a system until they are integers. 1˚C as a fixed-point value. Both the offset and divider values would have to be adjusted to accommodate the new location of the decimal point, as would any limits or test values. In addition, any routines that format the data for a user interface would have to correctly place the decimal point to properly represent the data. While this may seem like a lot of overhead, it does eliminate the problem with round off error, and once the constants are scaled, only minimal changes are required in the user interface routines.

3 INT UNSIGNED INT variable_name variable_name INT, short for integer, is the next larger data type. It is typically used to hold larger signed and unsigned binary values, and while the BITs and CHARs have consistent and predefined data lengths, the length of an INT is largely dependent on the specific implementation of the high-level compiler. As a result, the actual number of bits in an INT can vary from as few as 16 bits, to whatever the upper limit of the compiler is. The only limitation on the size of an INT is that it must be larger than a CHAR and less than or equal to the size of a LONG.

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