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Timer/Counter Clock

Sources

Counter Unit

The Timer/Counter can be clocked by an internal or an external clock source. The clock source is selected by the clock select logic which is controlled by the clock select (CS12:0) bits located in the Timer/Counter Control Register B (TCCR1B). For details on clock sources and prescaler, see “Timer/Counter0 and Timer/Counter1 Prescalers” on page 72.

The main part of the 16-bit Timer/Counter is the programmable 16-bit bi-directional counter unit. Figure 33 shows a block diagram of the counter and its surroundings.

Figure 33. Counter Unit Block Diagram

DATA BUS (8-bit)

TOVn

(Int. Req.)

TEMP (8-bit)

Clock Select

count

Edge

Tn

TCNTnH (8-bit) TCNTnL (8-bit)

clear

clkTn

Detector

Control Logic

TCNTn (16-bit Counter)

direction

( From Prescaler )

TOP

BOTTOM

Signal description (internal signals):

count

Increment or decrement TCNT1 by 1.

direction

Select between increment and decrement.

clear

Clear TCNT1 (set all bits to zero).

clkT1

Timer/Counter clock.

TOP

Signalize that TCNT1 has reached maximum value.

BOTTOM

Signalize that TCNT1 has reached minimum value (zero).

The 16-bit counter is mapped into two 8-bit I/O memory locations: counter high (TCNT1H) containing the upper eight bits of the counter, and Counter Low (TCNT1L) containing the lower eight bits. The TCNT1H Register can only be indirectly accessed by the CPU. When the CPU does an access to the TCNT1H I/O location, the CPU accesses the High byte temporary register (TEMP). The temporary register is updated with the TCNT1H value when the TCNT1L is read, and TCNT1H is updated with the temporary register value when TCNT1L is written. This allows the CPU to read or write the entire 16-bit counter value within one clock cycle via the 8-bit data bus. It is important to notice that there are special cases of writing to the TCNT1 Register when the counter is counting that will give unpredictable results. The special cases are described in the sections where they are of importance.

Depending on the mode of operation used, the counter is cleared, incremented, or decremented at each timer clock (clkT1). The clkT1 can be generated from an external or internal clock source, selected by the clock select bits (CS12:0). When no clock source is selected (CS12:0 = 0) the timer is stopped. However, the TCNT1 value can be accessed by the CPU, independent of whether clkT1 is present or not. A CPU write overrides (has priority over) all counter clear or count operations.

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ATmega8(L)

Input Capture Unit

The counting sequence is determined by the setting of the Waveform Generation mode bits (WGM13:0) located in the Timer/Counter Control Registers A and B (TCCR1A and TCCR1B). There are close connections between how the counter behaves (counts) and how waveforms are generated on the Output Compare Outputs OC1x. For more details about advanced counting sequences and waveform generation, see “Modes of Operation” on page 86.

The Timer/Counter Overflow (TOV1) fLag is set according to the mode of operation selected by the WGM13:0 bits. TOV1 can be used for generating a CPU interrupt.

The Timer/Counter incorporates an Input Capture unit that can capture external events and give them a time-stamp indicating time of occurrence. The external signal indicating an event, or multiple events, can be applied via the ICP1 pin or alternatively, via the Analog Comparator unit. The time-stamps can then be used to calculate frequency, duty-cycle, and other features of the signal applied. Alternatively the time-stamps can be used for creating a log of the events.

The Input Capture unit is illustrated by the block diagram shown in Figure 34. The elements of the block diagram that are not directly a part of the Input Capture unit are gray shaded. The small “n” in register and bit names indicates the Timer/Counter number.

Figure 34. Input Capture Unit Block Diagram

DATA BUS (8-bit)

TEMP (8-bit)

ICRnH (8-bit)

ICRnL (8-bit)

TCNTnH (8-bit)

TCNTnL (8-bit)

WRITE

ICRn (16-bit Register)

TCNTn (16-bit Counter)

ACO*

ACIC*

ICNC

ICES

Analog

Comparator

Noise

Edge

ICFn (Int. Req.)

Canceler

Detector

ICPn

When a change of the logic level (an event) occurs on the Input Capture Pin (ICP1), alternatively on the Analog Comparator Output (ACO), and this change confirms to the setting of the edge detector, a capture will be triggered. When a capture is triggered, the 16-bit value of the counter (TCNT1) is written to the Input Capture Register (ICR1). The Input Capture Flag (ICF1) is set at the same system clock as the TCNT1 value is copied into ICR1 Register. If enabled (TICIE1 = 1), the Input Capture Flag generates an Input Capture interrupt. The ICF1 Flag is automatically cleared when the interrupt is executed. Alternatively the ICF1 Flag can be cleared by software by writing a logical one to its I/O bit location.

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Reading the 16-bit value in the Input Capture Register (ICR1) is done by first reading the

Low byte (ICR1L) and then the High byte (ICR1H). When the Low byte is read the High

byte is copied into the High byte temporary register (TEMP). When the CPU reads the

ICR1H I/O location it will access the TEMP Register.

The ICR1 Register can only be written when using a Waveform Generation mode that

utilizes the ICR1 Register for defining the counter’s TOP value. In these cases the

Waveform Generation mode (WGM13:0) bits must be set before the TOP value can be

written to the ICR1 Register. When writing the ICR1 Register the High byte must be writ-

ten to the ICR1H I/O location before the Low byte is written to ICR1L.

For more information on how to access the 16-bit registers refer to “Accessing 16-bit

Registers” on page 77.

Input Capture Pin Source

The main trigger source for the Input Capture unit is the Input Capture Pin (ICP1).

Timer/Counter 1 can alternatively use the Analog Comparator Output as trigger source

for the Input Capture unit. The Analog Comparator is selected as trigger source by set-

ting the Analog Comparator Input Capture (ACIC) bit in the Analog Comparator Control

and Status Register (ACSR). Be aware that changing trigger source can trigger a cap-

ture. The Input Capture Flag must therefore be cleared after the change.

Both the Input Capture Pin (ICP1) and the Analog Comparator Output (ACO) inputs are

sampled using the same technique as for the T1 pin (Figure 30 on page 72). The edge

detector is also identical. However, when the noise canceler is enabled, additional logic

is inserted before the edge detector, which increases the delay by four system clock

cycles. Note that the input of the noise canceler and edge detector is always enabled

unless the Timer/Counter is set in a Waveform Generation mode that uses ICR1 to

define TOP.

An Input Capture can be triggered by software by controlling the port of the ICP1 pin.

Noise Canceler

The noise canceler improves noise immunity by using a simple digital filtering scheme.

The noise canceler input is monitored over four samples, and all four must be equal for

changing the output that in turn is used by the edge detector.

The noise canceler is enabled by setting the Input Capture Noise Canceler (ICNC1) bit

in Timer/Counter Control Register B (TCCR1B). When enabled the noise canceler intro-

duces additional four system clock cycles of delay from a change applied to the input, to

the update of the ICR1 Register. The noise canceler uses the system clock and is there-

fore not affected by the prescaler.

Using the Input Capture Unit

The main challenge when using the Input Capture unit is to assign enough processor

capacity for handling the incoming events. The time between two events is critical. If the

processor has not read the captured value in the ICR1 Register before the next event

occurs, the ICR1 will be overwritten with a new value. In this case the result of the cap-

ture will be incorrect.

When using the Input Capture interrupt, the ICR1 Register should be read as early in the

interrupt handler routine as possible. Even though the Input Capture interrupt has rela-

tively high priority, the maximum interrupt response time is dependent on the maximum

number of clock cycles it takes to handle any of the other interrupt requests.

Using the Input Capture unit in any mode of operation when the TOP value (resolution)

is actively changed during operation, is not recommended.

Measurement of an external signal’s duty cycle requires that the trigger edge is changed

after each capture. Changing the edge sensing must be done as early as possible after

the ICR1 Register has been read. After a change of the edge, the Input Capture Flag

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