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    ther bits would be zero. We would need to enable address lines X-0 and Y-0 by passing a small pul
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    OK, now how does it work? We have said how we can store a 1 or 0 in a core by flipping it from one state to the other. The core can be magnetised in one direction or the other, clockwise ,or counter-clockwise, 1 or 0. We start with a clear memory, all bits in all addresses set to 0.

    To write a 1 in address 0 we would need to write a 1 bit in bit 0 of address 0000 0000 0000. All other bits would be zero. We would need to enable address lines X-0 and Y-0 by passing a small puls

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    e state to the other. The core can be magnetised in one direction or the other, clockwise ,or counter-clockwise, 1 or 0. We start with a clear memory, all bits in all addresses set to 0.

    To write a 1 in address 0 we would need to write a 1 bit in bit 0 of address 0000 0000 0000. All other bits would be zero. We would need to enable address lines X-0 and Y-0 by passing a small pul

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    nter-clockwise, 1 or 0. We start with a clear memory, all bits in all addresses set to 0.

    To write a 1 in address 0 we would need to write a 1 bit in bit 0 of address 0000 0000 0000. All other bits would be zero. We would need to enable address lines X-0 and Y-0 by passing a small pul

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    write a 1 in address 0 we would need to write a 1 bit in bit 0 of address 0000 0000 0000. All other bits would be zero. We would need to enable address lines X-0 and Y-0 by passing a small pul
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    ther bits would be zero. We would need to enable address lines X-0 and Y-0 by passing a small pulse through them, each pulse being half the size needed to flip the magnetic field. The one point where the two address lines pass through the same core would therefore cause a flip, as the sum of the two address line pulses is sufficient for this to happen.

    On each plane we have a 'write inhibit' wire passing through all cores in that plane. To write a 1 bit we do not use this wire, h

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