Category: Linear
The problem
A plain Java array is fixed-size at creation. Most real use cases don't know the final size up front — records arrive one at a time from a file, a queue, a request. Allocating "enough" capacity means either guessing too high (wasted memory) or too low (an overflow you have to handle by hand: allocate a bigger array, copy every element across, keep going).
The solution
Wrap a raw array and grow it automatically: when an add would overflow the backing array,
allocate a new array at double the capacity, copy everything across, and keep appending. A
single resize is O(n), but it happens exponentially less often as the array grows, so the
average cost per add across many appends — the amortized cost — stays O(1). Shrinking
mirrors this: once occupancy drops to a quarter of capacity, halve it, so a fill-then-drain
workload doesn't thrash by resizing at every single removal near one boundary.
flowchart LR
A["size == capacity"] -->|add| B["allocate 2x array"]
B --> C["copy n elements"]
C --> D["append succeeds"]
E["size == capacity/4"] -->|remove| F["allocate capacity/2 array"]
F --> G["copy n elements"]
G --> H["remove succeeds"]
| Operation | Cost | Why |
|---|---|---|
get(index) / set(index, v) |
O(1) | direct array offset |
add(v) (append) |
O(1) amortized | doubling keeps resize frequency exponentially small |
remove(index) |
O(n) | shifts every element after index left by one |
| iteration | O(n) | contiguous, cache-friendly scan |
Classic example
classic/DynamicArray
is built on a raw Object[], not java.util.ArrayList — add, get, set, remove, and
Iterable<T> are all hand-rolled, including the doubling growth and quartering shrink policy.
DynamicArrayTest
covers growth past the initial capacity, shrink-after-drain, out-of-bounds access, and iterator
exhaustion.
Applied example: batch record buffer
applied/BatchRecordBuffer
stages PolicyBatchRecord
rows as they arrive from an insurance-premium batch extraction, then hands them out to parallel
workers in fixed-size chunks via drainInChunksOf. This is exactly the shape a large batch
pipeline (3M+ rows/day at a large insurer) runs into: ingestion is pure append, and draining is a single
bulk scan — a dynamic array's contiguous layout serves both better than a linked list would.
BatchRecordBufferTest
covers even/uneven chunk boundaries and the empty-buffer case.
Benchmark
./gradlew :linear:dynamic-array:jmh
Real run on this machine (JMH 1.37, JDK 26.0.2, 2 warmup + 3 measurement iterations, 1 fork):
| Benchmark | size=100 | size=10,000 | size=1,000,000 |
|---|---|---|---|
append (total for N appends) |
611 ns | 75,047 ns | 75.6 ms |
get (single indexed read) |
2.50 ns | 2.44 ns | 2.46 ns |
get stays flat at ~2.4–2.5 ns regardless of size — the O(1) claim, falsifiable and confirmed.
append's total cost scales roughly linearly with size (≈6–7.5 ns/element at 100 and
10,000), which is what "amortized O(1) per element" looks like in aggregate; the 1,000,000 row
had one iteration land on a large resize and skews the average up, which is the honest,
unsmoothed result of a doubling-array resize actually happening mid-benchmark, not a
measurement error.
When not to use it
- Frequent insertion/removal at the front or middle: every such operation is O(n) here.
A doubly linked list (or an
ArrayDeque-style circular buffer for the front-only case) is the better fit. - If the maximum size is known exactly up front and never changes, a plain fixed array skips the resize machinery entirely.
- Need range queries or ordered floor/ceiling lookups by key? See this repo's Binary Search Tree module instead.
Test coverage
100% instruction coverage, 100% branch coverage (JaCoCo). Reproduce it yourself:
./gradlew :linear:dynamic-array:jacocoTestReport
Report at linear/dynamic-array/build/reports/jacoco/test/html/index.html.
Unit tests
src/test/java/com/datastructures/linear/dynamicarray/classic/DynamicArrayTest.java
package com.datastructures.linear.dynamicarray.classic;
import org.junit.jupiter.api.Test;
import java.util.ArrayList;
import java.util.Iterator;
import java.util.List;
import java.util.NoSuchElementException;
import static org.assertj.core.api.Assertions.assertThat;
import static org.assertj.core.api.Assertions.assertThatThrownBy;
class DynamicArrayTest {
@Test
void startsEmpty() {
DynamicArray<String> array = new DynamicArray<>();
assertThat(array.isEmpty()).isTrue();
assertThat(array.size()).isZero();
}
@Test
void addAppendsAndGetReadsBackInOrder() {
DynamicArray<String> array = new DynamicArray<>();
array.add("a");
array.add("b");
array.add("c");
assertThat(array.size()).isEqualTo(3);
assertThat(array.get(0)).isEqualTo("a");
assertThat(array.get(1)).isEqualTo("b");
assertThat(array.get(2)).isEqualTo("c");
}
@Test
void growsPastInitialCapacityWithoutLosingElements() {
DynamicArray<Integer> array = new DynamicArray<>(2);
for (int i = 0; i < 100; i++) {
array.add(i);
}
assertThat(array.size()).isEqualTo(100);
assertThat(array.capacity()).isGreaterThan(2);
for (int i = 0; i < 100; i++) {
assertThat(array.get(i)).isEqualTo(i);
}
}
@Test
void setReplacesElementAndReturnsThePreviousOne() {
DynamicArray<String> array = new DynamicArray<>();
array.add("original");
String previous = array.set(0, "replaced");
assertThat(previous).isEqualTo("original");
assertThat(array.get(0)).isEqualTo("replaced");
}
@Test
void removeShiftsSubsequentElementsLeft() {
DynamicArray<String> array = new DynamicArray<>();
array.add("a");
array.add("b");
array.add("c");
String removed = array.remove(0);
assertThat(removed).isEqualTo("a");
assertThat(array.size()).isEqualTo(2);
assertThat(array.get(0)).isEqualTo("b");
assertThat(array.get(1)).isEqualTo("c");
}
@Test
void shrinksCapacityAfterDrainingBelowAQuarterFull() {
DynamicArray<Integer> array = new DynamicArray<>();
for (int i = 0; i < 1000; i++) {
array.add(i);
}
int grownCapacity = array.capacity();
for (int i = 999; i >= 20; i--) {
array.remove(i);
}
assertThat(array.capacity()).isLessThan(grownCapacity);
for (int i = 0; i < array.size(); i++) {
assertThat(array.get(i)).isEqualTo(i);
}
}
@Test
void getAndSetAndRemoveRejectOutOfBoundsIndexes() {
DynamicArray<String> array = new DynamicArray<>();
array.add("only");
assertThatThrownBy(() -> array.get(-1)).isInstanceOf(IndexOutOfBoundsException.class);
assertThatThrownBy(() -> array.get(1)).isInstanceOf(IndexOutOfBoundsException.class);
assertThatThrownBy(() -> array.set(5, "x")).isInstanceOf(IndexOutOfBoundsException.class);
assertThatThrownBy(() -> array.remove(5)).isInstanceOf(IndexOutOfBoundsException.class);
}
@Test
void iteratesInInsertionOrderAndExhaustsCorrectly() {
DynamicArray<Integer> array = new DynamicArray<>();
array.add(1);
array.add(2);
array.add(3);
List<Integer> collected = new ArrayList<>();
for (int value : array) {
collected.add(value);
}
assertThat(collected).containsExactly(1, 2, 3);
}
@Test
void constructorRejectsNonPositiveInitialCapacity() {
assertThatThrownBy(() -> new DynamicArray<Integer>(0)).isInstanceOf(IllegalArgumentException.class);
}
@Test
void isEmptyReportsFalseOnceAnElementHasBeenAdded() {
DynamicArray<String> array = new DynamicArray<>();
array.add("a");
assertThat(array.isEmpty()).isFalse();
}
@Test
void iteratorNextThrowsOnceExhausted() {
DynamicArray<Integer> array = new DynamicArray<>();
array.add(1);
Iterator<Integer> iterator = array.iterator();
iterator.next();
assertThatThrownBy(iterator::next).isInstanceOf(NoSuchElementException.class);
}
}
src/test/java/com/datastructures/linear/dynamicarray/applied/BatchRecordBufferTest.java
package com.datastructures.linear.dynamicarray.applied;
import org.junit.jupiter.api.Test;
import java.math.BigDecimal;
import java.time.Instant;
import java.util.ArrayList;
import java.util.List;
import static org.assertj.core.api.Assertions.assertThat;
import static org.assertj.core.api.Assertions.assertThatThrownBy;
class BatchRecordBufferTest {
@Test
void drainInChunksOfSplitsRecordsIntoFixedSizeChunksWithASmallerLastChunk() {
BatchRecordBuffer buffer = new BatchRecordBuffer();
for (int i = 0; i < 25; i++) {
buffer.ingest(record("policy-" + i));
}
List<List<PolicyBatchRecord>> chunks = new ArrayList<>();
buffer.drainInChunksOf(10, chunks::add);
assertThat(chunks).hasSize(3);
assertThat(chunks.get(0)).hasSize(10);
assertThat(chunks.get(1)).hasSize(10);
assertThat(chunks.get(2)).hasSize(5);
assertThat(chunks.get(0).get(0).policyId()).isEqualTo("policy-0");
assertThat(chunks.get(2).get(4).policyId()).isEqualTo("policy-24");
}
@Test
void drainInChunksOfProducesExactlyOneFullChunkWhenSizeDividesEvenly() {
BatchRecordBuffer buffer = new BatchRecordBuffer();
buffer.ingest(record("policy-a"));
buffer.ingest(record("policy-b"));
List<List<PolicyBatchRecord>> chunks = new ArrayList<>();
buffer.drainInChunksOf(2, chunks::add);
assertThat(chunks).hasSize(1);
assertThat(chunks.get(0)).hasSize(2);
}
@Test
void drainClearsTheBufferAfterwards() {
BatchRecordBuffer buffer = new BatchRecordBuffer();
buffer.ingest(record("policy-a"));
buffer.ingest(record("policy-b"));
buffer.drainInChunksOf(10, chunk -> { });
assertThat(buffer.size()).isZero();
}
@Test
void drainOnAnEmptyBufferInvokesNoChunks() {
BatchRecordBuffer buffer = new BatchRecordBuffer();
List<List<PolicyBatchRecord>> chunks = new ArrayList<>();
buffer.drainInChunksOf(10, chunks::add);
assertThat(chunks).isEmpty();
}
@Test
void drainInChunksOfRejectsANonPositiveChunkSize() {
BatchRecordBuffer buffer = new BatchRecordBuffer();
assertThatThrownBy(() -> buffer.drainInChunksOf(0, chunk -> { }))
.isInstanceOf(IllegalArgumentException.class);
}
private static PolicyBatchRecord record(String policyId) {
return new PolicyBatchRecord(policyId, BigDecimal.valueOf(199.90), Instant.now());
}
}