ATUC64L4U Atmel Corporation, ATUC64L4U Datasheet - Page 87

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ATUC64L4U

Manufacturer Part Number
ATUC64L4U
Description
Manufacturer
Atmel Corporation
Datasheets

Specifications of ATUC64L4U

Flash (kbytes)
64 Kbytes
Pin Count
48
Max. Operating Frequency
50 MHz
Cpu
32-bit AVR
# Of Touch Channels
17
Hardware Qtouch Acquisition
Yes
Max I/o Pins
36
Ext Interrupts
36
Usb Transceiver
1
Usb Speed
Full Speed
Usb Interface
Device
Spi
1
Twi (i2c)
2
Uart
4
Lin
4
Ssc
1
Graphic Lcd
No
Video Decoder
No
Camera Interface
No
Adc Channels
8
Adc Resolution (bits)
12
Adc Speed (ksps)
460
Analog Comparators
8
Resistive Touch Screen
No
Temp. Sensor
Yes
Crypto Engine
No
Sram (kbytes)
16
Self Program Memory
YES
Dram Memory
No
Nand Interface
No
Picopower
Yes
Temp. Range (deg C)
-40 to 85
I/o Supply Class
1.62 to 3.6
Operating Voltage (vcc)
1.62 to 3.6
Fpu
No
Mpu / Mmu
Yes / No
Timers
6
Output Compare Channels
18
Input Capture Channels
12
Pwm Channels
35
32khz Rtc
Yes
Calibrated Rc Oscillator
Yes

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9. OCD system
9.1
9.1.1
9.1.2
9.1.2.1
32002F–03/2010
Overview
Features
OCD controller overview
Host, debugger, and emulator
The AVR32 CPU is targeted at a wide range of 32-bit applications. The CPU can be delivered in
very different implementations in various ASIC’s, ASSP’s, and standard parts to satisfy require-
ments for low-cost as well as high-speed markets. According to the cost sensitivity and
complexity of these applications, a similar span in debug complexity must be expected. While
some users expect very simple debug features, or none at all, others will demand full-speed
trace and RTOS debug support. This also applies to the debug tools: While the simplest devel-
opment takes place on simulators and development boards, most will require basic on-chip
debug emulators, and a few will require complex emulators with full-speed trace.
To match these criteria, the AVR32 OCD system is designed in accordance with the Nexus 2.0
standard (IEEE-ISTO 5001™-2003), which is a highly flexible and powerful open on-chip debug
standard for 32-bit microcontrollers.
The OCD system interfaces provides the external debugger with access to the on-chip debug
logic through the JTAG port and the Auxiliary (AUX) port, as shown in Figure 9-1. The operation
is described briefly below and in more detail in separate chapters.
At the host side, the user debugs his software using a source level debugger, which can read his
compiled and linked object code. The source level debugger accesses features in the emulator
and OCD system through an API (defined by the vendor or based on the Nexus recommenda-
tions), which constitutes the abstract interface between the source level debugger and the
emulator. The API translates high-level functions, such as setting breakpoints or reading mem-
ory areas, to sets of low level commands understood by the OCD controller. Certain operations
• Nexus compliant debug solution
• OCD supports any CPU speed
• Execute debug specific CPU instructions (debug code) from program memory monitor or
• Debug code can read and write all registers and data memory
• Debug code can communicate with debugger through the debug port
• Debug mode can be entered by external command, breakpoint instruction, or hardware
• Six program counter hardware breakpoints are supported
• Two data breakpoints are supported
• Breakpoints can be configured as watchpoints (flagged to the external debugger)
• Hardware breakpoints can be combined to give break on ranges
• Real-time program counter branch tracing
• Real-time data trace
• Real-time process trace
• Nexus Class 2+
external debugger
breakpoints
AVR32
87

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