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AN753 Datasheet(PDF) 1 Page - Microchip Technology |
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AN753 Datasheet(HTML) 1 Page - Microchip Technology |
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1 / 4 page ![]() 2001 Microchip Technology Inc. DS00753A-page 1 M AN753 OVERVIEW An Analog-to-Digital (A/D) converter translates an ana- log input signal into a discrete digital code. This digital representation of the “real world” signal can be manip- ulated in the digital domain for the purposes of informa- tion processing, computing, data transmission or control system implementation. In any application where a converter is used, it is advantageous to have the code structure complement the microcontroller’s operands. This application note describes the straight binary and binary two’s complement code schemes that are out- putted by Microchip’s Analog-to-Digital (A/D) convert- ers. All code examples given in this application note are for a 4-bit conversion. The median analog voltages in the tables are the equivalent analog voltages that are at the center of the digital code. STRAIGHT BINARY CODE The straight binary code is more accurately called uni- polar straight binary. This digital format for an A/D con- version is the simplest to understand. As the name implies, this coding scheme is used only when positive voltages are converted. An example of this type of cod- ing is shown in Table 1. When this scheme is used to represent a positive ana- log signal range, the digital code for zero volts is equal to zero (0000 per Table 1). Given an ideal converter with no offset, gain, INL or DNL error, the code transi- tion from 0000 to 0001 occurs at the analog value of: where: where: n is equal to the number of bits in the converter +FS is equal to the analog full-scale range. The A/D converters from Microchip that produce a straight binary output code are from the MCP320X (12- bit) and the MCP300X (10-bit) families. These devices can be operated in a single ended, pos- itive voltage input mode or a pseudo-differential input mode, but in both cases the digital output represents a positive input voltage. In the pseudo-differential mode, the IN- input is limited to ±100 mV. This can be used to cancel small noise signals present on both the IN+ and IN- inputs. This provides a means of rejecting noise when the IN- input is used to sense a remote signal ground. The converter will produce digital code that represents the analog input when the IN+ input range is from IN- to (VFS -1 LSB). When the voltage level of IN+ is less than IN-, the resultant code for the family of devices will be still be ‘0’, which does not represent a negative voltage. Author: Bonnie C. Baker Microchip Technology Inc. First Code Transition 0 1 2 ---LSB + = Second Code Transition 1LSB 1 2 ---LSB + = LSB +FS 2 n ----------- = Median Analog Voltage (V) Digital Code 0.9375 FS (15/16 FS) 1111 0.875 FS (14/16 FS) 1110 0.8125 FS (13/16 FS) 1101 0.75 FS (12/16 FS) 1100 0.6875 FS (11/16 FS) 1011 0.625 FS (10/16 FS) 1010 0.5625 FS (9/16 FS) 1001 0.5 FS (8/16FS) 1000 0.4375 FS (7/16 FS) 0111 0.375 FS (6/16 FS) 0110 0.3125 FS (5/16 FS) 0101 0.25 FS (4/16 FS) 0100 0.1875 FS (3/16 FS) 0011 0.125 FS (2/16 FS) 0010 0.0625 FS (1/16 FS) 0001 0 0000 TABLE 1: The unipolar straight binary code representation of zero volts is equal to a digital (0000). The analog full-scale minus one LSB digital representation is equal to (1111). With this code, there is no digital representation for analog full-scale. Digital Coding Schemes for Mixed Signal Communication |
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