AT32UC3B1128 Atmel Corporation, AT32UC3B1128 Datasheet - Page 40

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AT32UC3B1128

Manufacturer Part Number
AT32UC3B1128
Description
Manufacturer
Atmel Corporation

Specifications of AT32UC3B1128

Flash (kbytes)
128 Kbytes
Pin Count
48
Max. Operating Frequency
60 MHz
Cpu
32-bit AVR
# Of Touch Channels
32
Hardware Qtouch Acquisition
No
Max I/o Pins
28
Ext Interrupts
28
Usb Transceiver
1
Usb Speed
Full Speed
Usb Interface
Device
Spi
3
Twi (i2c)
1
Uart
2
Graphic Lcd
No
Video Decoder
No
Camera Interface
No
Adc Channels
6
Adc Resolution (bits)
10
Adc Speed (ksps)
384
Resistive Touch Screen
No
Temp. Sensor
No
Crypto Engine
No
Sram (kbytes)
32
Self Program Memory
YES
Dram Memory
No
Nand Interface
No
Picopower
No
Temp. Range (deg C)
-40 to 85
I/o Supply Class
3.0-3.6 or (1.65-1.95+3.0-3.6)
Operating Voltage (vcc)
3.0-3.6 or (1.65-1.95+3.0-3.6)
Fpu
No
Mpu / Mmu
Yes / No
Timers
10
Output Compare Channels
16
Input Capture Channels
6
Pwm Channels
13
32khz Rtc
Yes
Calibrated Rc Oscillator
Yes

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4. Floating Point Hardware
4.1
4.2
4.2.1
32002F–03/2010
Compliance
Operations
Floating point compare (fcp.s)
Newer versions of UC3 CPU introduced optional floating-point hardware performing 32-bit float-
ing-point operations. Instructions controlling this hardware are mapped into the coprocessor
instruction space, addressed as coprocessor 0. The CONFIG0 system register F bit indicates if
floating-point hardware is present on a specific AVR32 device.
The floating point hardware reads operands and places results in the same register file as the
traditional AVR32 instructions. Floating-point compare updates the flags in the AVR32 Status
Register, so that the regular AVR32 branch instructions can be used directly after a floating-
point compare.
The floating-point hardware consists of a fused multiply-accumulate unit, performing
as a single operation with no intermediate rounding, thereby resulting in greater precision than if
separate multiplication and addition had been performed. Hardware is also provided to convert
between integer and floating-point, to compare floating-point values, and to provide initial
approximations for reciprocal and reciprocal square root.
The floating point hardware conforms to the requirements of the C standard, which is based on
the IEEE 754 floating point standard.
The round-to-nearest, ties to even rounding mode is used for all instructions except float-to-inte-
ger conversions. Float-to-integer conversions use the round-to-zero mode.
The hardware supports denormal numbers.
Signalling NaN are not provided, all NaN are non-signalling (quiet). NaNs are not propagated,
the default quiet NaN is always returned (0x7FC00000).
No floating-point exceptions are generated.
The floating-point instructions are mapped into the coprocessor instruction space, but use the
ordinary integer register file. The ordinary integer instructions such as memory accesses and
logical operations can therefore be used on the same register data as the floating point hard-
ware uses. Therefore, no special floating-point data transfer instructions are required. All floating
point instructions are mapped to coprocessor 0 cop instructions, i.e. they are aliases for cop
instructions.
Attempting to execute instructions on any other coprocessor than coprocessor 0 will return a
coprocessor absent exception.
Attempting to execute coprocessor 0 instructions other than cop on a device with floating point
hardware will result in an unimplemented instruction exception.
Attempting to execute coprocessor 0 cop instructions on a device without floating point hard-
ware will result in an unimplemented instruction exception.
The floating point compare instruction, fcp.s, updates the status register flags. Ordinary AVR32
branch instructions such as breq and conditional instructions such as retge and movls can use
AVR32
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A X Y
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