}
+/**
+ * virDomainMemoryGetMappedSize:
+ * @mem: memory device definition
+ *
+ * For given memory device definition (@mem) calculate size mapped into
+ * the guest. This is usually mem->size, except for NVDIMM where its
+ * label is mapped elsewhere.
+ *
+ * Returns: Number of bytes a memory device takes when mapped into a
+ * guest.
+ */
+static unsigned long long
+virDomainMemoryGetMappedSize(const virDomainMemoryDef *mem)
+{
+ unsigned long long ret = mem->size;
+
+ if (mem->model == VIR_DOMAIN_MEMORY_MODEL_NVDIMM) {
+ unsigned long long alignsize = mem->source.nvdimm.alignsize;
+ unsigned long long labelsize = 0;
+
+ /* For NVDIMM the situation is a bit more complicated. Firstly,
+ * its <label/> is not mapped as a part of memory device, so we
+ * must subtract label size from NVDIMM size. Secondly,
+ * remaining memory is then aligned again (rounded down). But
+ * for our purposes we might just round label size up and
+ * achieve the same (numeric) result. */
+
+ if (alignsize == 0) {
+ long pagesize = virGetSystemPageSizeKB();
+
+ /* If no alignment is specified in the XML, fallback to
+ * system page size alignment. */
+ if (pagesize > 0)
+ alignsize = pagesize;
+ }
+
+ if (alignsize > 0) {
+ labelsize = VIR_ROUND_UP(mem->target.nvdimm.labelsize, alignsize);
+
+ ret -= labelsize;
+ }
+ }
+
+ return ret * 1024;
+}
+
+
static int
virDomainMemoryDefCheckConflict(const virDomainMemoryDef *mem,
const virDomainDef *def)
}
/* thisStart and thisEnd are in bytes, mem->size in kibibytes */
- thisEnd = thisStart + mem->size * 1024;
+ thisEnd = thisStart + virDomainMemoryGetMappedSize(mem);
for (i = 0; i < def->nmems; i++) {
const virDomainMemoryDef *other = def->mems[i];
if (thisStart == 0 || otherStart == 0)
continue;
- otherEnd = otherStart + other->size * 1024;
+ otherEnd = otherStart + virDomainMemoryGetMappedSize(other);
if ((thisStart <= otherStart && thisEnd > otherStart) ||
(otherStart <= thisStart && otherEnd > thisStart)) {